WO2016203217A1 - Compositions comprising bacterial strains - Google Patents

Compositions comprising bacterial strains Download PDF

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Publication number
WO2016203217A1
WO2016203217A1 PCT/GB2016/051768 GB2016051768W WO2016203217A1 WO 2016203217 A1 WO2016203217 A1 WO 2016203217A1 GB 2016051768 W GB2016051768 W GB 2016051768W WO 2016203217 A1 WO2016203217 A1 WO 2016203217A1
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WO
WIPO (PCT)
Prior art keywords
composition
bacterial strain
treating
preventing
asthma
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/GB2016/051768
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French (fr)
Inventor
George Grant
Angela Margaret PATTERSON
Imke MULDER
Seanin MCCLUSKEY
Emma RAFTIS
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
4D Pharma Research Ltd
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4D Pharma Research Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
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Publication date
Priority claimed from GBGB1510470.6A external-priority patent/GB201510470D0/en
Priority claimed from GBGB1520510.7A external-priority patent/GB201520510D0/en
Priority claimed from GBGB1603786.3A external-priority patent/GB201603786D0/en
Priority to EP19187822.2A priority Critical patent/EP3626248A1/en
Priority to CN201680041407.6A priority patent/CN108271355B/en
Priority to MX2017016525A priority patent/MX2017016525A/en
Priority to CA2988657A priority patent/CA2988657A1/en
Priority to ES16731639T priority patent/ES2748826T3/en
Priority to LTEP16731639.7T priority patent/LT3204024T/en
Priority to SI201630339T priority patent/SI3204024T1/en
Priority to BR112017025004A priority patent/BR112017025004A2/en
Priority to EA201890047A priority patent/EA201890047A1/en
Priority to RSP20191213 priority patent/RS59307B1/en
Priority to DK16731639.7T priority patent/DK3204024T3/en
Priority to PL16731639T priority patent/PL3204024T3/en
Priority to MDE20170057T priority patent/MD3204024T2/en
Priority to JP2017501360A priority patent/JP6375051B2/en
Priority to AU2016278066A priority patent/AU2016278066B2/en
Application filed by 4D Pharma Research Ltd filed Critical 4D Pharma Research Ltd
Priority to SM20190540T priority patent/SMT201900540T1/en
Priority to EP16731639.7A priority patent/EP3204024B1/en
Priority to HRP20191720 priority patent/HRP20191720T1/en
Priority to MEP-2019-259A priority patent/ME03562B/en
Priority to KR1020187000113A priority patent/KR20180012847A/en
Publication of WO2016203217A1 publication Critical patent/WO2016203217A1/en
Priority to US15/592,178 priority patent/US10058574B2/en
Priority to IL255794A priority patent/IL255794B/en
Priority to ZA2017/07854A priority patent/ZA201707854B/en
Anticipated expiration legal-status Critical
Priority to CONC2017/0013446A priority patent/CO2017013446A2/en
Priority to US16/040,356 priority patent/US10391130B2/en
Priority to US16/505,098 priority patent/US10780134B2/en
Priority to CY20191101065T priority patent/CY1122148T1/en
Priority to US16/845,867 priority patent/US11040075B2/en
Priority to IL276798A priority patent/IL276798B/en
Priority to US17/318,015 priority patent/US20220008486A1/en
Priority to AU2021290210A priority patent/AU2021290210A1/en
Ceased legal-status Critical Current

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    • C—CHEMISTRY; METALLURGY
    • C07—ORGANIC CHEMISTRY
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Definitions

  • the invention provides compositions comprising a bacterial strain of the species Bacteroides coprocola, for use in reducing IL- 17 production or reducing Thl7 cell differentiation in the treatment or prevention of asthma, rheumatoid arthritis or multiple sclerosis, or of asthma, rheumatoid arthritis, multiple sclerosis, uveitis or cancer.
  • the invention provides compositions comprising a bacterial strain of the species Bacteroides thetaiotaomicron, for use in reducing IL-17 production or reducing Thl7 cell differentiation in the treatment or prevention of asthma, rheumatoid arthritis, multiple sclerosis, uveitis or cancer.
  • the composition of the invention is for oral administration.
  • Oral administration of the strains of the invention can be effective for treating IL-17- or Thl7 pathway-mediated diseases and conditions.
  • oral administration is convenient for patients and practitioners and allows delivery to and / or partial or total colonisation of the intestine.
  • Figure 7 Mouse model of house dust mite- -induced asthma - Proportion of neutrophils in BALF.
  • the bacterial strain for use in the invention may have a plasmid with at least 90% sequence identity to SEQ ID NO: 7 across 70% of SEQ ID NO:7, or at least 90% sequence identity to SEQ ID NO:7 across 80% of SEQ ID NO:7, or at least 90% sequence identity to SEQ ID NO: 7 across 90% of SEQ ID NO: 7, or at least 90% sequence identity to SEQ ID NO:7 across 100% of SEQ ID NO:7, or at least 95% sequence identity to SEQ ID NO:7 across 70% of SEQ ID NO: 7, or at least 95% sequence identity to SEQ ID NO: 7 across 80% of SEQ ID NO:7, or at least 95% sequence identity to SEQ ID NO:7 across 90% of SEQ ID NO:7, or at least 95% sequence identity to SEQ ID NO:7 across 100% of SEQ ID NO:7, or at least 98% sequence identity to SEQ ID NO:7 across 70% of SEQ ID NO:7, or at least 98% sequence identity to SEQ ID NO:7 across 80% of SEQ ID NO:7,
  • IL-17 and Thl7 cells may have a key role in multiple sclerosis, for example because IL-17 levels may correlate with multiple sclerosis lesions, IL-17 can disrupt blood brain barrier endothelial cell tight junctions, and Thl7 cells can migrate into the central nervous system and cause neuronal loss [30,31]. Therefore, the compositions of the invention may be particularly effective for preventing or treating multiple sclerosis.
  • the bodyweights measured between Day -14 and Day -1 in the biotherapeutic-treated groups did not differ from the bodyweights measured in the vehicle-treated group on any given day.
  • mice tested in Example 2 were subjected to further analyses to further characterise the effect of the compositions of the invention on the neutrophilic response associated with severe asthma.
  • a composition described herein containing at least one bacterial strain described herein is stored in a sealed container at 25 ° C or 4 ° C and the container is placed in an atmosphere having 30%, 40%, 50%, 60%, 70%, 75%, 80%, 90% or 95% relative humidity. After 1 month, 2 months, 3 months, 6 months, 1 year, 1.5 years, 2 years, 2.5 years or 3 years, at least 50%, 60%, 70%, 80% or 90% of the bacterial strain shall remain as measured in colony forming units determined by standard protocols.
  • SEQ ID NO: 7 (strain 675 plasmid sequence) - see electronic sequence listing.

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Abstract

The invention provides compositions comprising bacterial strains for treating and preventing inflammatory and autoimmune diseases.

Description

COMPOSITIONS COMPRISING BACTERIAL STRAINS
TECHNICAL FIELD
This invention is in the field of compositions comprising bacterial strains isolated from the mammalian digestive tract and the use of such compositions in the treatment of disease.
BACKGROUND TO THE INVENTION
The human intestine is thought to be sterile in utero, but it is exposed to a large variety of maternal and environmental microbes immediately after birth. Thereafter, a dynamic period of microbial colonization and succession occurs, which is influenced by factors such as delivery mode, environment, diet and host genotype, all of which impact upon the composition of the gut microbiota, particularly during early life. Subsequently, the microbiota stabilizes and becomes adult-like [1]. The human gut microbiota contains more than 500-1000 different phylotypes belonging essentially to two major bacterial divisions, the Bacteroidetes and the Firmicutes [2]. The successful symbiotic relationships arising from bacterial colonization of the human gut have yielded a wide variety of metabolic, structural, protective and other beneficial functions. The enhanced metabolic activities of the colonized gut ensure that otherwise indigestible dietary components are degraded with release of by-products providing an important nutrient source for the host. Similarly, the immunological importance of the gut microbiota is well-recognized and is exemplified in germfree animals which have an impaired immune system that is functionally reconstituted following the introduction of commensal bacteria [3-5].
Dramatic changes in microbiota composition have been documented in gastrointestinal disorders such as inflammatory bowel disease (IBD). For example, the levels of Clostridium cluster XrVa bacteria are reduced in IBD patients whilst numbers of E. coli are increased, suggesting a shift in the balance of symbionts and pathobionts within the gut [6-9]. Interestingly, this microbial dysbiosis is also associated with imbalances in T effector cell populations.
In recognition of the potential positive effect that certain bacterial strains may have on the animal gut, various strains have been proposed for use in the treatment of various diseases (see, for example, [10- 13]). Also, certain strains, including mostly Lactobacillus and Bifidobacterium strains, have been proposed for use in treating various inflammatory and autoimmune diseases that are not directly linked to the intestines (see [14] and [15] for reviews). However, the relationship between different diseases and different bacterial strains, and the precise effects of particular bacterial strains on the gut and at a systemic level and on any particular types of diseases, are poorly characterised.
There is a requirement in the art for new methods of treating inflammatory and autoimmune diseases. There is also a requirement for the potential effects of gut bacteria to be characterised so that new therapies using gut bacteria can be developed. SUMMARY OF THE INVENTION
The inventors have developed new therapies for treating and preventing inflammatory and autoimmune diseases. In particular, the inventors have developed new therapies for treating and preventing diseases and conditions mediated by IL-17 or the Th 17 pathway. In particular, the inventors have identified that bacterial strains from the genus Bacteroides can be effective for reducing the Thl7 inflammatory response. As described in the examples, oral administration of compositions comprising Bacteroides coprocola may reduce the severity of the inflammatory response, including the Thl7 inflammatory response, in mouse models of asthma, rheumatoid arthritis and multiple sclerosis.
Therefore, in a first embodiment, the invention provides a composition comprising a bacterial strain of the genus Bacteroides, for use in a method of treating or preventing a disease or condition mediated by IL-17 or the Thl7 pathway. The inventors have identified that treatment with bacterial strains from this genus can reduce levels of cytokines that are part of the Thl7 pathway, including IL-17, can alleviate the Thl7 inflammatory response and can provide clinical benefits in mouse models of inflammatory and autoimmune diseases mediated by IL-17 and the Thl7 pathway.
In particular embodiments, the invention provides a composition comprising a bacterial strain of the genus Bacteroides, for use in a method of treating or preventing a disease or condition selected from the group consisting of: multiple sclerosis; arthritis, such as rheumatoid arthritis, osteoarthritis, psoriatic arthritis, or juvenile idiopathic arthritis; neuromyelitis optica (Devic's disease); ankylosing spondylitis; spondyloarthritis; psoriasis; systemic lupus erythematosus; inflammatory bowel disease, such as Crohn's disease or ulcerative colitis; celiac disease; asthma, such as allergic asthma or neutrophilic asthma; chronic obstructive pulmonary disease (COPD); cancer, such as breast cancer, colon cancer, lung cancer or ovarian cancer; uveitis; scleritis; vasculitis; Behcet's disease; atherosclerosis; atopic dermatitis; emphysema; periodontitis; allergic rhinitis; and allograft rejection. The effect shown for the bacterial strains from the genus Bacteroides on the Thl7 inflammatory response may provide therapeutic benefits for diseases and conditions mediated by IL-17 and the Thl7 pathway, such as those listed above.
In preferred embodiments, the invention provides a composition comprising a bacterial strain of the genus Bacteroides, for use in a method of treating or preventing asthma, such as neutrophilic asthma or allergic asthma. The inventors have identified that treatment with Bacteroides strains can reduce recruitment of neutrophils and eosinophils into the lungs, which can help treat or prevent asthma. Furthermore, the inventors have tested and demonstrated the efficacy of Bacteroides strains in mouse models of asthma. In certain embodiments, the composition is for use in a method of treating or preventing neutrophilic asthma or eosinophilic asthma. The effect shown for the compositions of the invention on neutrophils and eosinophils mean that they may be particularly effective for treating or preventing neutrophilic asthma and eosinophilic asthma. Indeed, in certain embodiments, the composition is for use in a method of reducing a neutrophilic inflammatory response in the treatment or prevention of asthma, or the composition is for use in a method of reducing an eosinophilic inflammatory response in the treatment or prevention of asthma. In preferred embodiments, the invention provides a composition comprising a bacterial strain of the species Bacteroides coprocola, for use in the treatment of asthma, and in particular neutrophilic asthma. Bacteroides coprocola is shown to have a particularly pronounced effect on neutrophils in asthma models and treatment with Bacteroides coprocola may be particularly effective for treating neutrophilic asthma. In certain embodiments, the invention provides a composition comprising a bacterial strain of the species Bacteroides thetaiotaomicron for use in the treatment of asthma, and in particular eosinophilic or allergic asthma. In certain embodiments, the invention provides a composition comprising a bacterial strain of the species Bacteroides fragilis for use in the treatment of asthma, and in particular eosinophilic or allergic asthma.
In further preferred embodiments, the invention provides a composition comprising a bacterial strain of the genus Bacteroides, for use in a method of treating or preventing rheumatoid arthritis. The inventors have identified that treatment with Bacteroides strains can provide clinical benefits in a mouse model of rheumatoid arthritis and can reduce joint swelling. In preferred embodiments, the invention provides a composition comprising a bacterial strain of the species Bacteroides coprocola, for use in the treatment of rheumatoid arthritis. Compositions using Bacteroides coprocola may be particularly effective for treating rheumatoid arthritis. In certain embodiments, the invention provides a composition comprising a bacterial strain of the species Bacteroides thetaiotaomicron, for use in the treatment of rheumatoid arthritis. In certain embodiments, the invention provides a composition comprising a bacterial strain of the species Bacteroides fragilis, for use in the treatment of rheumatoid arthritis.
In further preferred embodiments, the invention provides a composition comprising a bacterial strain of the genus Bacteroides, for use in a method of treating or preventing multiple sclerosis. The inventors have identified that treatment with Bacteroides strains can reduce disease incidence and disease severity in a mouse model of multiple sclerosis. In preferred embodiments, the invention provides a composition comprising a bacterial strain of the species Bacteroides coprocola, for use in the treatment of multiple sclerosis. Compositions using Bacteroides coprocola may be particularly effective for treating multiple sclerosis. In certain embodiments, the invention provides a composition comprising a bacterial strain of the species Bacteroides thetaiotaomicron, for use in the treatment of multiple sclerosis. In certain embodiments, the invention provides a composition comprising a bacterial strain of the species Bacteroides fragilis, for use in the treatment of multiple sclerosis.
In further preferred embodiments, the invention provides a composition comprising a bacterial strain of the genus Bacteroides, for use in a method of treating or preventing cancer, such as breast, lung or liver cancer. Compositions comprising a bacterial strain of the genus Bacteroides may reduce tumour growth in mouse models of breast, lung and liver cancer. In certain embodiments, the composition is for use in a method of reducing tumour size or preventing tumour growth in the treatment of cancer. In certain embodiments, the invention provides a composition comprising a bacterial strain of the species Bacteroides coprocola, for use in the treatment of cancer. In certain embodiments, the invention provides a composition comprising a bacterial strain of the species Bacteroides thetaiotaomicron, for use in the treatment of cancer. In certain embodiments, the invention provides a composition comprising a bacterial strain of the species Bacteroides fragilis, for use in the treatment of cancer.
In further preferred embodiments, the invention provides a composition comprising a bacterial strain of the genus Bacteroides, for use in a method of treating or preventing uveitis, such as posterior uveitis. In certain embodiments, the invention provides a composition comprising a bacterial strain of the species Bacteroides coprocola, for use in the treatment of uveitis. In certain embodiments, the invention provides a composition comprising a bacterial strain of the species Bacteroides thetaiotaomicron, for use in the treatment of uveitis. In certain embodiments, the invention provides a composition comprising a bacterial strain of the species Bacteroides fragilis, for use in the treatment of uveitis.
In certain embodiments, the compositions of the invention are for use in a method of reducing IL-17 production or reducing Thl7 cell differentiation in the treatment or prevention of a disease or condition mediated by IL-17 or the Thl7 pathway. In particular, the compositions of the invention may be used in reducing IL-17 production or reducing Thl7 cell differentiation in the treatment or prevention of asthma, rheumatoid arthritis or multiple sclerosis. Preferably, the invention provides compositions comprising a bacterial strain of the species Bacteroides coprocola, for use in reducing IL- 17 production or reducing Thl7 cell differentiation in the treatment or prevention of asthma, rheumatoid arthritis or multiple sclerosis, or of asthma, rheumatoid arthritis, multiple sclerosis, uveitis or cancer. In certain embodiments, the invention provides compositions comprising a bacterial strain of the species Bacteroides thetaiotaomicron, for use in reducing IL-17 production or reducing Thl7 cell differentiation in the treatment or prevention of asthma, rheumatoid arthritis, multiple sclerosis, uveitis or cancer. In certain embodiments, the invention provides compositions comprising a bacterial strain of the species Bacteroides fragilis, for use in reducing IL-17 production or reducing Thl7 cell differentiation in the treatment or prevention of asthma, rheumatoid arthritis, multiple sclerosis, uveitis or cancer.
In certain embodiments, the composition is for use in a patient with elevated IL-17 levels or Thl7 cells. The effect on the Thl7 inflammatory response shown for Bacteroides strains may be particularly beneficial for such patients.
In preferred embodiments of the invention, the bacterial strain in the composition is of Bacteroides coprocola. Closely related strains may also be used, such as bacterial strains that have a 16s rRNA sequence that is at least 95%, 96%, 97%, 98%, 99%, 99.5% or 99.9% identical to the 16s rRNA sequence of a bacterial strain of Bacteroides coprocola. Preferably, the bacterial strain has a 16s rRNA sequence that is at least 95%, 96%, 97%, 98%, 99%, 99.5% or 99.9% identical to SEQ ID NO: l, 2, 3 or 4. Preferably, the sequence identity is to SEQ ID NO:4. Preferably, the bacterial strain for use in the invention has the 16s rRNA sequence represented by SEQ ID NO:4.
In further preferred embodiments of the invention, the bacterial strain in the composition is of Bacteroides thetaiotaomicron. Closely related strains may also be used, such as bacterial strains that have a 16s rRNA sequence that is at least 95%, 96%, 97%, 98%, 99%, 99.5% or 99.9% identical to the 16s rRNA sequence of a bacterial strain of Bacteroides thetaiotaomicron. Preferably, the bacterial strain has a 16s rRNA sequence that is at least 95%, 96%, 97%, 98%, 99%, 99.5% or 99.9% identical to SEQ ID NO:5. Preferably, the bacterial strain for use in the invention has the 16s rRNA sequence represented by SEQ ID NO: 5.
In further preferred embodiments of the invention, the bacterial strain in the composition is of Bacteroides fragilis. Closely related strains may also be used, such as bacterial strains that have a genome with sequence identity to CR626927.1.
In certain embodiments, the composition of the invention is for oral administration. Oral administration of the strains of the invention can be effective for treating IL-17- or Thl7 pathway-mediated diseases and conditions. Also, oral administration is convenient for patients and practitioners and allows delivery to and / or partial or total colonisation of the intestine.
In certain embodiments, the composition of the invention comprises one or more pharmaceutically acceptable excipients or carriers.
In certain embodiments, the composition of the invention comprises a bacterial strain that has been lyophilised. Lyophilisation is an effective and convenient technique for preparing stable compositions that allow delivery of bacteria.
In certain embodiments, the invention provides a food product comprising the composition as described above.
In certain embodiments, the invention provides a vaccine composition comprising the composition as described above.
Additionally, the invention provides a method of treating or preventing a disease or condition mediated by IL-17 or the Thl7 pathway, comprising administering a composition comprising a bacterial strain of the genus Bacteroides.
In developing the above invention, the inventors have identified and characterised a bacterial strain that is particularly useful for therapy. The Bacteroides coprocola strain of the invention is shown to be effective for treating the diseases described herein, such as arthritis, asthma and multiple sclerosis. Therefore, in another aspect, the invention provides a cell of the Bacteroides coprocola strain deposited under accession number NCIMB 42408, or a derivative thereof. The invention also provides compositions comprising such cells, or biologically pure cultures of such cells. The invention also provides a cell of the Bacteroides coprocola strain deposited under accession number NCIMB 42408, or a derivative thereof, for use in therapy, in particular for the diseases described herein.
BRIEF DESCRIPTION OF DRAWINGS
Figure 1: Mouse model of house dust mite- -induced asthma - Total BAL fluid cell counts.
Figure 2: Mouse model of house dust mite- -induced asthma - Total eosinophil count in BALF.
Figure 3: Mouse model of house dust mite- -induced asthma - Proportion of eosinophils in BALF.
Figure 4: Mouse model of house dust mite- -induced asthma - Total macrophage count in BALF.
Figure 5: Mouse model of house dust mite- -induced asthma - Proportion of macrophages in BALF.
Figure 6: Mouse model of house dust mite- -induced asthma - Total neutrophil count in BALF.
Figure 7: Mouse model of house dust mite- -induced asthma - Proportion of neutrophils in BALF.
Figure 8: Mouse model of house dust mite- -induced asthma - Total lymphocyte count in BALF.
Figure 9: Mouse model of house dust mite- -induced asthma - Proportion of lymphocytes in BALF.
Figure 10: Mouse model of severe neutrophilic asthma - Total BAL fluid cell counts.
Figure 11: Mouse model of severe neutrophilic asthma - Total eosinophil count in BALF.
Figure 12: Mouse model of severe neutrophilic asthma - Proportion of eosinophils in BALF.
Figure 13: Mouse model of severe neutrophilic asthma - Total macrophage count in BALF.
Figure 14: Mouse model of severe neutrophilic asthma - Proportion of macrophages in BALF.
Figure 15: Mouse model of severe neutrophilic asthma - Total neutrophil count in BALF.
Figure 16: Mouse model of severe neutrophilic asthma - Proportion of neutrophils in BALF.
Figure 17: Mouse model of severe neutrophilic asthma - Total lymphocyte count in BALF.
Figure 18: Mouse model of severe neutrophilic asthma - Proportion of lymphocytes in BALF.
Figure 19: Mouse model of rheumatoid arthritis - Bodyweights, days -14 to 0. Data are presented
Mean ± SEM percentages of the initial (Day -14) bodyweights. Statistical significance:▲ p < 0.05 and▲▲▲▲ p < 0.0001 when compared to the vehicle-treated group.
Figure 20: Mouse model of rheumatoid arthritis - Bodyweights, days 0 to 42. Data are presented as Mean ± SEM percentages of the initial (Day 0) bodyweights.▲ p < 0.05,♦ p < 0.05,▲▲▲ p < 0.001, ···· p < 0.0001 when compared to the vehicle-treated group. Figure 21: Mouse model of rheumatoid arthritis - Clinical Scores. Data are presented as Mean ± SEM. **** p < 0.0001 when compared to Day 21 in the vehicle-treated group. *,O p < 0.05 when compared to the vehicle-treated group on a given day.
Figure 22: Mouse model of rheumatoid arthritis - Splenocyte proliferative response to Collagen II. Media background subtracted [Cll-stimulated - media background] counts per minute based on 3H- TdR incorporation. All data are presented as Mean ± SEM.
Figure 23: Mouse model of rheumatoid arthritis - Levels of IFNy in tissue culture supematants from Vehicle-treated group. Lines represent group median values.
Figure 24: Mouse model of rheumatoid arthritis - Levels of IL-17A in tissue culture supematants from Vehicle-treated group. Lines represent group median values.
Figure 25: Mouse model of rheumatoid arthritis - Levels of IL-10 in tissue culture supematants from Vehicle-treated group. Lines represent group median values.
Figure 26: Mouse model of rheumatoid arthritis - Levels of IL-6 in tissue culture supematants from Vehicle-treated group. Lines represent group median values.
Figure 27: Mouse model of rheumatoid arthritis - Levels of cytokine in tissue culture supematants from biotherapeutic #675-treated group (Group 4). Lines represent group median values.
Figure 28: Mouse model of house dust mite-induced asthma - Total IgE in Serum
Figure 29: Mouse model of house dust mite-induced asthma - HDM specific IgGl in Serum
Figure 30: Mouse model of house dust mite-induced asthma - Total IgE in BALF
Figure 31: Mouse model of house dust mite-induced asthma - HDM specific IgGl in BALF
Figure 32: Mouse model of house dust mite-induced asthma - Histological Analysis - Mean Peribronchiolar Infiltration Score
Figure 33: Mouse model of house dust mite-induced asthma - Histological Analysis - Mean Perivascular Infiltration Score
Figure 34: Mouse model of house dust mite-induced asthma - Histological Analysis - Mean Inflammatory Score (Average of both Peribronchiolar and Perivascular Infiltration Score)
Figure 35: Mouse model of house dust mite-induced asthma - Histological Analysis - Mucus Score
Figure 36: Mouse model of house dust mite-induced asthma - IL-9 level in lung tissue
Figure 37: Mouse model of house dust mite-induced asthma - IL-la level in lung tissue Figure 38: Mouse model of house dust mite-induced asthma - IFNy level in lung tissue Figure 39: Mouse model of house dust mite-induced asthma - IL-17A level in lung tissue
Figure 40: Mouse model of house dust mite-induced asthma - IL-4 level in lung tissue
Figure 41: Mouse model of house dust mite-induced asthma - IL-5 level in lung tissue
Figure 42: Mouse model of house dust mite-induced asthma - IL-lb level in lung tissue
Figure 43: Mouse model of house dust mite-induced asthma - RANTES level in lung tissue
Figure 44: Mouse model of house dust mite-induced asthma - MIP-la level in lung tissue
Figure 45: Mouse model of house dust mite-induced asthma - KC level in lung tissue
Figure 46: Mouse model of house dust mite-induced asthma - MIP-2 level in lung tissue
Figure 47: Mouse model of severe neutrophilic asthma - HDM specific IgGl in Serum
Figure 48: Mouse model of severe neutrophilic asthma - HDM specific IgG2a in Serum
Figure 49: Mouse model of severe neutrophilic asthma - HDM specific IgGl in BALF
Figure 50: Mouse model of severe neutrophilic asthma - HDM specific IgG2a in BALF
Figure 51: Mouse model of severe neutrophilic asthma - Histological Analysis - Mean Peribronchiolar Infiltration Score
Figure 52: Mouse model of severe neutrophilic asthma - Histological Analysis - Mean Perivascular Infiltration Score
Figure 53: Mouse model of severe neutrophilic asthma - Histological Analysis - Mean Inflammatory Score (Average of both Peribronchiolar and Perivascular Infiltration Score)
Figure 54: Mouse model of severe neutrophilic asthma - TNFa level in lung tissue
Figure 55: Mouse model of severe neutrophilic asthma - IL- la level in lung tissue
Figure 56: Mouse model of severe neutrophilic asthma - IFNy level in lung tissue
Figure 57: Mouse model of severe neutrophilic asthma - IL-17F level in lung tissue
Figure 58: Mouse model of severe neutrophilic asthma - IL-lb level in lung tissue
Figure 59: Mouse model of severe neutrophilic asthma - RANTES level in lung tissue
Figure 60: Mouse model of severe neutrophilic asthma - MIP-2 level in lung tissue
Figure 61: Mouse model of severe neutrophilic asthma - KC level in lung tissue
Figure 62: Mouse model of severe neutrophilic asthma - IL-17A level in lung tissue
Figure 63: Mouse model of severe neutrophilic asthma -MIP-la level in lung tissue Figure 64: Mouse model of severe neutrophilic asthma - IL-33 level in lung tissue
Figure 65: Mouse model of rheumatoid arthritis - Visual Template for Histopathology Scoring. Representative images showing composite scores from mouse tarsal joints in a collagen- induced arthritis study.
Figure 66: Mouse model of rheumatoid arthritis - Histopathology: Inflammation Scores. Data are presented as Mean ± SEM. ** p < 0.01 when compared to the vehicle-treated group.
Figure 67: Mouse model of rheumatoid arthritis - Histopathology: Vehicle-treated group Cartilage Scores. Data are presented as Mean ± SEM.
Figure 68: Mouse model of rheumatoid arthritis - Histopathology: Bone Scores. Data are presented as Mean ± SEM.
Figure 69: Mouse model of rheumatoid arthritis - Histopathology: Total Scores. Data are presented as Mean ± SEM.
Figure 70: Mouse model of rheumatoid arthritis - Histopathology: Strain #675. Data are presented as Mean ± SEM. Figure 71: Mouse model of rheumatoid arthritis - Histopathology: Representative Pictures. Animal ID (#n.n) and limb (R for right, L for left) are indicated between brackets. Top left image (vehicle): extensive joint and bone destruction with inflammation and fibrosis extending to the peri-articular soft tissues. Lower image (strain #675): synovitis and bursitis extending focally to peri-articular tissues, mild articular cartilage damage and intra-articular debris, bone structure unaffected.
Figure 72: Mouse model of multiple sclerosis - clinical score.
Figure 73: Mouse model of multiple sclerosis - disease incidence.
DISCLOSURE OF THE INVENTION
Bacterial strains
The compositions of the invention comprise a bacterial strain of the genus Bacteroides. The examples demonstrate that bacteria of this genus are useful for treating or preventing diseases and conditions mediated by IL-17 or the Thl7 pathway. The preferred bacterial strains are of the species Bacteroides coprocola. Further preferred bacterial strains are of the species Bacteroides thetaiotaomicron or Bacteroides fragilis.
Examples of Bacteroides species for use in the invention include Bacteroides massiliensis, Bacteroides coprocola, Bacteroides thetaiotaomicron and Bacteroides caccae. A further example of a Bacteroides species for use in the invention is Bacteroides fragilis. Bacteroides is a genus of Gram-negative, obligately anaerobic bacteria. Bacteroides species are non-endospore-forming bacilli, and may be either motile or non-motile, depending on the species. Bacteroides species make up a substantial portion of the mammalian gastrointestinal flora and are essential for processing complex molecules.
Bacteroides coprocola cells cultivated on EG blood agar plates are strictly anaerobic, non-spore- forming, non-motile and Gram-negative. The short rods or rod-shaped cells are about 0·8μηι in width and variable in length, generally in the range 1-4μηι. Example strains of species Bacteroides coprocola are described in [16]. The type strain, M16T (=JCM 12979T=DSM 17136T), was isolated from faeces of a healthy human. Two additional strains [Mi l (=JCM 12980) and Ml 56 (=JCM 12981)] are included in this species. GenBank/EMBL/DDBJ accession numbers for the 16S rRNA gene sequence of these Bacteroides coprocola strains are AB200223, AB200224 and AB200225 (disclosed herein as SEQ ID NO:l, SEQ ID NO:2 and SEQ ID NO:3).
The Bacteroides coprocola bacterium deposited under accession number NCIMB 42408 was tested in the Examples and is also referred to herein as strain 675. A 16S rRNA sequence for the 675 strain that was tested is provided in SEQ ID NO:4. Strain 675 was deposited with the international depositary authority NCFMB, Ltd. (Ferguson Building, Aberdeen, AB21 9YA, Scotland) by 4D Pharma Research Ltd. (Life Sciences Innovation Building, Aberdeen, AB25 2ZS, Scotland) on 13th May 2015 as "Bacteroidales 675" and was assigned accession number NCIMB 42408.
The genome of strain 675 comprises a chromosome and plasmid. A chromosome sequence for strain 675 is provided in SEQ ID NO: 6. A plasmid sequence for strain 675 is provided in SEQ ID NO: 7. These sequences were generated using the PacBio RS II platform.
Bacterial strains closely related to the strain tested in the examples are also expected to be effective for treating or preventing diseases and conditions mediated by IL-17 or the Thl7 pathway. In certain embodiments, the bacterial strain for use in the invention has a 16s rRNA sequence that is at least 95%, 96%, 97%, 98%, 99%, 99.5% or 99.9% identical to the 16s rRNA sequence of a bacterial strain of Bacteroides coprocola. Preferably, the bacterial strain for use in the invention has a 16s rRNA sequence that is at least 95%, 96%, 97%, 98%, 99%, 99.5% or 99.9% identical to SEQ ID NO: 1, 2, 3 or 4. Preferably, the sequence identity is to SEQ ID NO:4. Preferably, the bacterial strain for use in the invention has the 16s rRNA sequence represented by SEQ ID NO:4.
A further preferred bacterial strain for use in the invention is the Bacteroides thetaiotaomicron strain deposited under accession number NCIMB 42341. This strain was deposited with the international depositary authority NCIMB, Ltd. (Ferguson Building, Aberdeen, AB21 9YA, Scotland) on 3rd December 2014.
Further preferred Bacteroides thetaiotaomicron strains for use in the invention are the type strain ATCC 29148 = CCUG 10774 = CIP 104206 = DSM 2079 = JCM 5827 = NCTC 10582 = VPI 5482 and strain WAL 2926 = ATCC 29741. A further preferred Bacteroides thetaiotaomicron strain for use in the invention is the strain described in EP1448995. The accession number for the 16S rRNA gene sequence of Bacteroides thetaiotaomicron strain WAL 2926 is M58763 (disclosed herein as SEQ ID NO:5).
In certain embodiments, the bacterial strain for use in the invention has a 16s rRNA sequence that is at least 95%, 96%, 97%, 98%, 99%, 99.5% or 99.9% identical to the 16s rRNA sequence of a bacterial strain of Bacteroides thetaiotaomicron. Preferably, the bacterial strain for use in the invention has a 16s rRNA sequence that is at least 95%, 96%, 97%, 98%, 99%, 99.5% or 99.9% identical to SEQ ID NO:5. Preferably, the bacterial strain for use in the invention has the 16s rRNA sequence represented by SEQ ID NO:5.
A preferred Bacteroides fragilis strain for use in the invention is the type strain ATCC 25285 = CCUG 4856 = CIP 77.16 = DSM 2151 = JCM 11019 = LMG 10263 = NCTC 9343. The accession number for the Bacteroides fragilis NCTC 9343 strain complete genome is CR626927.1 (version: CR626927.1 GI: 60491031).
In certain embodiments, the bacterial strain for use in the invention has a genome with sequence identity to CR626927.1. In preferred embodiments, the bacterial strain for use in the invention has a genome with at least 90% sequence identity (e.g. at least 92%, 94%, 95%, 96%, 97%, 98%, 99% or 100% sequence identity) to CR626927.1 across at least 60% (e.g. at least 65%, 70%, 75%, 80%, 85%, 95%, 96%, 97%, 98%, 99% or 100%) of CR626927.1. For example, the bacterial strain for use in the invention may have a genome with at least 90% sequence identity to CR626927.1 across 70% of CR626927.1, or at least 90% sequence identity to CR626927.1 across 80% of CR626927.1, or at least 90% sequence identity to CR626927.1 across 90% of CR626927.1, or at least 90% sequence identity to CR626927.1 across 100% of CR626927.1, or at least 95% sequence identity to CR626927.1 across 70% of CR626927.1, or at least 95% sequence identity to CR626927.1 across 80% of CR626927.1, or at least 95% sequence identity to CR626927.1 across 90% of CR626927.1, or at least 95% sequence identity to CR626927.1 across 100% of CR626927.1, or at least 98% sequence identity to CR626927.1 across 70% of CR626927.1, or at least 98% sequence identity to CR626927.1 across 80% of CR626927.1, or at least 98% sequence identity to CR626927.1 across 90% of CR626927.1, or at least 98% sequence identity to CR626927.1 across 100% of CR626927.1.
In certain embodiments, the bacterial strain for use in the invention has a chromosome with sequence identity to SEQ ID NO:6. In preferred embodiments, the bacterial strain for use in the invention has a chromosome with at least 90% sequence identity (e.g. at least 92%, 94%, 95%, 96%, 97%, 98%, 99% or 100% sequence identity) to SEQ ID NO: 6 across at least 60% (e.g. at least 65%, 70%, 75%, 80%, 85%, 95%, 96%, 97%, 98%, 99% or 100%) of SEQ ID NO:6. For example, the bacterial strain for use in the invention may have a chromosome with at least 90% sequence identity to SEQ ID NO: 6 across 70% of SEQ ID NO: 6, or at least 90% sequence identity to SEQ ID NO: 6 across 80% of SEQ ID NO: 6, or at least 90% sequence identity to SEQ ID NO: 6 across 90% of SEQ ID NO: 6, or at least 90% sequence identity to SEQ ID NO:6 across 100% of SEQ ID NO:6, or at least 95% sequence identity to SEQ ID NO:6 across 70% of SEQ ID NO:6, or at least 95% sequence identity to SEQ ID NO:6 across 80% of SEQ ID NO: 6, or at least 95% sequence identity to SEQ ID NO: 6 across 90% of SEQ ID NO: 6, or at least 95% sequence identity to SEQ ID NO:6 across 100% of SEQ ID NO:6, or at least 98% sequence identity to SEQ ID NO: 6 across 70% of SEQ ID NO: 6, or at least 98% sequence identity to SEQ ID NO:6 across 80% of SEQ ID NO:6, or at least 98% sequence identity to SEQ ID NO:6 across 90% of SEQ ID NO:6, or at least 98% sequence identity to SEQ ID NO:6 across 100% of SEQ ID NO:6.
In certain embodiments, the bacterial strain for use in the invention has a plasmid with sequence identity to SEQ ID NO: 7. In preferred embodiments, the bacterial strain for use in the invention has a plasmid with at least 90% sequence identity (e.g. at least 92%, 94%, 95%, 96%, 97%, 98%, 99% or 100% sequence identity) to SEQ ID NO:7 across at least 60% (e.g. at least 65%, 70%, 75%, 80%, 85%, 95%, 96%, 97%, 98%, 99% or 100%) of SEQ ID NO: 7. For example, the bacterial strain for use in the invention may have a plasmid with at least 90% sequence identity to SEQ ID NO: 7 across 70% of SEQ ID NO:7, or at least 90% sequence identity to SEQ ID NO:7 across 80% of SEQ ID NO:7, or at least 90% sequence identity to SEQ ID NO: 7 across 90% of SEQ ID NO: 7, or at least 90% sequence identity to SEQ ID NO:7 across 100% of SEQ ID NO:7, or at least 95% sequence identity to SEQ ID NO:7 across 70% of SEQ ID NO: 7, or at least 95% sequence identity to SEQ ID NO: 7 across 80% of SEQ ID NO:7, or at least 95% sequence identity to SEQ ID NO:7 across 90% of SEQ ID NO:7, or at least 95% sequence identity to SEQ ID NO:7 across 100% of SEQ ID NO:7, or at least 98% sequence identity to SEQ ID NO:7 across 70% of SEQ ID NO:7, or at least 98% sequence identity to SEQ ID NO:7 across 80% of SEQ ID NO:7, or at least 98% sequence identity to SEQ ID NO:7 across 90% of SEQ ID NO:7, or at least 98% sequence identity to SEQ ID NO:7 across 100% of SEQ ID NO:7.
In certain embodiments, the bacterial strain for use in the invention has a chromosome with sequence identity to SEQ ID NO:6 and a plasmid with sequence identity to SEQ ID NO:7.
Bacterial strains that are biotypes of the bacterium deposited under accession number 42408 are also expected to be effective for treating or preventing diseases and conditions mediated by IL-17 or the Thl7 pathway. Bacterial strains that are biotypes of a bacterium deposited under accession number NCIMB 42341, ATCC 29148 or ATCC 29741 are also expected to be effective for treating or preventing diseases and conditions mediated by IL-17 or the Thl7 pathway. A biotype is a closely related strain that has the same or very similar physiological and biochemical characteristics.
Strains that are biotypes of a bacterium deposited under accession number NCIMB 42408, NCIMB 42341, ATCC 29148 or ATCC 29741 and that are suitable for use in the invention may be identified by sequencing other nucleotide sequences for a bacterium deposited under accession number NCIMB 42408, NCIMB 42341, ATCC 29148 or ATCC 29741. For example, substantially the whole genome may be sequenced and a biotype strain for use in the invention may have at least 95%, 96%, 97%, 98%, 99%, 99.5% or 99.9% sequence identity across at least 80% of its whole genome (e.g. across at least 85%, 90%, 95% or 99%, or across its whole genome). Other suitable sequences for use in identifying biotype strains may include hsp60 or repetitive sequences such as BOX, ERIC, (GTG)5, or REP or [17]. Biotype strains may have sequences with at least 95%, 96%, 97%, 98%, 99%, 99.5% or 99.9% sequence identity to the corresponding sequence of a bacterium deposited under accession number NCIMB 42408, NCIMB 42341, ATCC 29148 or ATCC 29741.
Alternatively, strains that are biotypes of a bacterium deposited under accession number NCIMB 42408, NCFMB 42341, ATCC 29148 or ATCC 29741 and that are suitable for use in the invention may be identified by using the accession number NCIMB 42408 deposit or the accession number NCIMB deposit 42341 or the accession number ATCC 29148 deposit or the accession number ATCC 29741 deposit and restriction fragment analysis and/or PCR analysis, for example by using fluorescent amplified fragment length polymorphism (FAFLP) and repetitive DNA element (rep)-PCR fingerprinting, or protein profiling, or partial 16S or 23s rDNA sequencing. In preferred embodiments, such techniques may be used to identify other Bacteroides coprocola or Bacteroides thetaiotaomicron strains.
In certain embodiments, strains that are biotypes of a bacterium deposited under accession number NCIMB 42408, NCIMB 42341, ATCC 29148 or ATCC 29741 and that are suitable for use in the invention are strains that provide the same pattern as a bacterium deposited under accession number NCIMB 42408, NCIMB 42341, ATCC 29148 or ATCC 29741 when analysed by amplified nbosomal DNA restriction analysis (ARDRA), for example when using Sau3AI restriction enzyme (for exemplary methods and guidance see, for example, [18]). Alternatively, biotype strains are identified as strains that have the same carbohydrate fermentation patterns as a bacterium deposited under accession number NCIMB 42408, NCIMB 42341, ATCC 29148 or ATCC 29741.
Other Bacteroides strains that are useful in the compositions and methods of the invention, such as biotypes of a bacterium deposited under accession number NCIMB 42408, NCIMB 42341, ATCC 29148 or ATCC 29741, may be identified using any appropriate method or strategy, including the assays described in the examples. For instance, strains for use in the invention may be identified by culturing in anaerobic YCFA and/or administering the bacteria to the type II collagen-induced arthritis mouse model and then assessing cytokine levels. In particular, bacterial strains that have similar growth patterns, metabolic type and/or surface antigens to a bacterium deposited under accession number NCFMB 42408, NCFMB 42341, ATCC 29148 or ATCC 29741 may be useful in the invention. A useful strain will have comparable immune modulatory activity to the NCIMB 42408, NCIMB 42341, ATCC 29148 or ATCC 29741 strain. In particular, a biotype strain will elicit comparable effects on the asthma, arthritis and multiple sclerosis disease models and comparable effects on cytokine levels to the effects shown in the Examples, which may be identified by using the culturing and administration protocols described in the Examples. A particularly preferred strain of the invention is the Bacteroides coprocola strain deposited under accession number NCIMB 42408. This is the exemplary 675 strain tested in the examples and shown to be effective for treating disease. Therefore, the invention provides a cell, such as an isolated cell, of the Bacteroides coprocola strain deposited under accession number NCIMB 42408, or a derivative thereof. The invention also provides a composition comprising a cell of the Bacteroides coprocola strain deposited under accession number NCIMB 42408, or a derivative thereof. The invention also provides a biologically pure culture of the Bacteroides coprocola strain deposited under accession number NCIMB 42408. The invention also provides a cell of the Bacteroides coprocola strain deposited under accession number NCIMB 42408, or a derivative thereof, for use in therapy, in particular for the diseases described herein.
A derivative of the strain deposited under accession number NCIMB 42408, NCIMB 42341, ATCC 29148 or ATCC 29741 may be a daughter strain (progeny) or a strain cultured (subcloned) from the original. A derivative of a strain of the invention may be modified, for example at the genetic level, without ablating the biological activity. In particular, a derivative strain of the invention is therapeutically active. A derivative strain will have comparable immune modulatory activity to the original NCIMB 42408, NCEVIB 42341, ATCC 29148 or ATCC 29741 strain. In particular, a derivative strain will elicit comparable effects on the asthma, arthritis and multiple sclerosis disease models and comparable effects on cytokine levels to the effects shown in the Examples, which may be identified by using the culturing and administration protocols described in the Examples. A derivative of the NCIMB 42408 strain will generally be a biotype of the NCIMB 42408 strain. A derivative of the NCIMB 42341, ATCC 29148 or ATCC 29741 strain will generally be a biotype of the NCIMB 42341, ATCC 29148 or ATCC 29741 strain.
References to cells of the Bacteroides coprocola strain deposited under accession number NCIMB 42408 encompass any cells that have the same safety and therapeutic efficacy characteristics as the strains deposited under accession number NCIMB 42408, and such cells are encompassed by the invention. References to cells of the Bacteroides thetaiotaomicron strain deposited under accession numbers NCIMB 42341, ATCC 29148 or ATCC 29741 encompass any cells that have the same safety and therapeutic efficacy characteristics as the strains deposited under accession number NCIMB 42341, ATCC 29148 or ATCC 29741, and such cells are encompassed by the invention.
In preferred embodiments, the bacterial strains in the compositions of the invention are viable and capable of partially or totally colonising the intestine.
Therapeutic uses
As demonstrated in the examples, the bacterial compositions of the invention are effective for reducing the Thl7 inflammatory response. In particular, treatment with compositions of the invention achieves a reduction in IL-17A levels and other Thl7 pathway cytokines, and clinical improvements in animal models of conditions mediated by IL-17 and the Thl7 pathway. Therefore, the compositions of the invention may be useful for treating or preventing inflammatory and autoimmune diseases, and in particular diseases or conditions mediated by IL-17. In particular, the compositions of the invention may be useful for reducing or preventing elevation of the IL-17 inflammatory response.
Thl7 cells are a subset of T helper cells that produce, for example, IL-17A, IL17-F, IL-21 and IL-22. Thl7 cell differentiation and IL-17 expression may be driven by IL-23. These cytokines and others form important parts of the Thl7 pathway, which is a well-established inflammatory signalling pathway that contributes to and underlies a number of inflammatory and autoimmune diseases (as described in, for example, [19-24]). Diseases wherein the Thl 7 pathway is activated are Thl 7 pathway- mediated diseases. Thl 7 pathway-mediated diseases can be ameliorated or alleviated by repressing the Thl 7 pathway, which may be through a reduction in the differentiation of Thl 7 cells or a reduction in their activity or a reduction in the level of Thl7 pathway cytokines. Diseases mediated by the Thl7 pathway may be characterised by increased levels of cytokines produced by Thl 7 cells, such as IL- 17A, IL-17F, IL-21, IL-22, IL-26, IL-9 (reviewed in [25]). Diseases mediated by the Thl7 pathway may be characterised by increased expression of Th-17-related genes, such as Stat3 or IL-23R. Diseases mediated by the Thl 7 pathway may be associated with increased levels of Thl 7 cells.
IL-17 is a pro-inflammatory cytokine that contributes to the pathogenesis of several inflammatory and autoimmune diseases and conditions. IL-17 as used herein may refer to any member of the IL-17 family, including IL-17A, IL-17B, IL-17C, IL-17D, IL-17E, and IL-17F. IL-17-mediated diseases and conditions are characterised by high expression of IL-17 and/or the accumulation or presence of IL- 17-positive cells in a tissue affected by the disease or condition. Similarly, IL-17-mediated diseases and conditions are diseases and conditions that are exacerbated by high IL-17 levels or an increase in IL-17 levels, and that are alleviated by low IL-17 levels or a reduction in IL-17 levels. The IL-17 inflammatory response may be local or systemic.
Examples of diseases and conditions that may be mediated by IL-17 or the Thl 7 pathway include multiple sclerosis; arthritis, such as rheumatoid arthritis, osteoarthritis, psoriatic arthritis, or juvenile idiopathic arthritis; neuromyelitis optica (Devic's disease); ankylosing spondylitis; spondyloarthritis; psoriasis; systemic lupus erythematosus; inflammatory bowel disease, such as Crohn's disease or ulcerative colitis; celiac disease; asthma, such as allergic asthma or neutrophilic asthma; chronic obstructive pulmonary disease (COPD); cancer, such as breast cancer, colon cancer, lung cancer or ovarian cancer; uveitis; scleritis; vasculitis; Behcet's disease; atherosclerosis; atopic dermatitis; emphysema; periodontitis; allergic rhinitis; and allograft rejection. In preferred embodiments, the compositions of the invention are used for treating or preventing one or more of these conditions or diseases. In further preferred embodiments, these conditions or diseases are mediated by IL-17 or the Thl 7 pathway.
In certain embodiments, the compositions of the invention are for use in a method of reducing IL-17 production or reducing Thl 7 cell differentiation in the treatment or prevention of a disease or condition mediated by IL-17 or the Thl7 pathway. In certain embodiments, the compositions of the invention are for use in treating or preventing an inflammatory or autoimmune disease, wherein said treatment or prevention is achieved by reducing or preventing elevation of the Thl7 inflammatory response. In certain embodiments, the compositions of the invention are for use in treating a patient with an inflammatory or autoimmune disease, wherein the patient has elevated IL-17 levels or elevated Thl7 cells or is exhibiting a Thl7 inflammatory response. In certain embodiments, the patient may have been diagnosed with a chronic inflammatory or autoimmune disease or condition, or the composition of the invention may be for use in preventing an inflammatory or autoimmune disease or condition developing into a chronic inflammatory or autoimmune disease or condition. In certain embodiments, the disease or condition may not be responsive to treatment with TNF-a inhibitors. These uses of the invention may be applied to any of the specific disease or conditions listed in the preceding paragraph.
IL-17 and the Thl 7 pathway are often associated with chronic inflammatory and autoimmune diseases, so the compositions of the invention may be particularly useful for treating or preventing chronic diseases or conditions as listed above. In certain embodiments, the compositions are for use in patients with chronic disease. In certain embodiments, the compositions are for use in preventing the development of chronic disease.
The compositions of the invention may be useful for treating diseases and conditions mediated by IL- 17 or the Thl 7 pathway and for addressing the Thl 7 inflammatory response, so the compositions of the invention may be particularly useful for treating or preventing chronic disease, treating or preventing disease in patients that have not responded to other therapies (such as treatment with TNF- α inhibitors), and/or treating or preventing the tissue damage and symptoms associated with IL-17 and Thl7 cells. For example, IL-17 is known to activate matrix destruction in cartilage and bone tissue and IL-17 has an inhibitory effect on matrix production in chondrocytes and osteoblasts, so the compositions of the invention may be useful for treating or preventing bone erosion or cartilage damage.
In certain embodiments, treatment with compositions of the invention provides a reduction or prevents an elevation in IL-17 levels, in particular IL-17A levels. In certain embodiments, treatment with compositions of the invention provides a reduction or prevents an elevation in IFN-γ, IL-Ιβ, RANTES, MIP-la, IL-8 or IL-6 levels. Such reduction or prevention of elevated levels of these cytokines may be useful for treating or preventing inflammatory and autoimmune diseases and conditions, in particular those mediated by IL-17 or the Thl7 pathway.
Asthma
In preferred embodiments, the compositions of the invention are for use in treating or preventing asthma. The examples demonstrate that the compositions of the invention achieve a reduction in the recruitment of neutrophils and/or eosinophils into the airways following sensitisation and challenge with house dust mite extract and so they may be useful in the treatment or prevention of asthma. Asthma is a chronic disease characterised by inflammation and restriction of the airways. The inflammation in asthma may be mediated by IL-17 and/or Thl7 cells, and so the compositions of the invention may be particularly effective for preventing or treating asthma. The inflammation in asthma may be mediated by eosinophils and/or neutrophils.
In certain embodiments, the asthma is eosinophilic or allergic asthma. Eosinophilic and allergic asthma are characterised by increased numbers of eosinophils in peripheral blood and in airway secretions and is associated pathologically with thickening of the basement membrane zone and pharmacologically by corticosteroid responsiveness [26]. Compositions that reduce or inhibit eosinophil recruitment or activation may be useful for treating or preventing eosinophilic and allergic asthma.
In additional embodiments, the compositions of the invention are for use in treating or preventing neutrophilic asthma (or non-eosinophilic asthma). High neutrophil numbers are associated with severe asthma that may be insensitive to corticosteroid treatment. Compositions that reduce or inhibit neutrophil recruitment or activation may be useful for treating or preventing neutrophilic asthma.
Eosinophilic and neutrophilic asthma are not mutually exclusive conditions and treatments that help address either the eosinophil and neutrophil responses may be useful for treating asthma in general.
Increased IL-17 levels and activation of the Thl7 pathway are associated with severe asthma, so the compositions of the invention may be useful for preventing the development of severe asthma or for treating severe asthma.
In certain embodiments, the compositions of the invention are for use in methods reducing an eosinophilic inflammatory response in the treatment or prevention of asthma, or for use in methods of reducing a neutrophilic inflammatory response in the treatment or prevention of asthma. As noted above, high levels of eosinophils in asthma is associated pathologically with thickening of the basement membrane zone, so reducing eosinophilic inflammatory response in the treatment or prevention of asthma may be able to specifically address this feature of the disease. Also, elevated neutrophils, either in combination with elevated eosinophils or in their absence, is associated with severe asthma and chronic airway narrowing. Therefore, reducing the neutrophilic inflammatory response may be particularly useful for addressing severe asthma.
In certain embodiments, the compositions reduce peribronchiolar infiltration in allergic asthma, or are for use in reducing peribronchiolar infiltration in the treatment of allergic asthma. In certain embodiments, the compositions reduce peribronchiolar and/or perivascular infiltration in neutrophilic asthma, or are for use in reducing peribronchiolar and/or perivascular infiltration in the treatment of allergic neutrophilic asthma.
In certain embodiments, treatment with compositions of the invention provides a reduction or prevents an elevation in IL-Ιβ, IFNy, RANTES, ΜΙΡ-Ια or IL-8 levels. In certain embodiments, the compositions of the invention are for use in a method of treating asthma that results in a reduction of the eosinophilic and/or neutrophilic inflammatory response. In certain embodiments, the patient to be treated has, or has previously been identified as having, elevated neutrophil or eosinophil levels, for example as identified through blood sampling or sputum analysis. The compositions of the invention may be useful for preventing the development of asthma in a newborn when administered to the new-born, or to a pregnant woman. The compositions may be useful for preventing the development of asthma in children. The compositions of the invention may be useful for treating or preventing adult-onset asthma. The compositions of the invention may be useful for managing or alleviating asthma. The compositions of the invention may be particularly useful for reducing symptoms associated with asthma that is aggravated by allergens, such as house dust mites.
Treatment or prevention of asthma may refer to, for example, an alleviation of the severity of symptoms or a reduction in the frequency of exacerbations or the range of triggers that are a problem for the patient.
Arthritis
In preferred embodiments, the compositions of the invention are for use in treating or preventing rheumatoid arthritis (RA). The examples demonstrate that the compositions of the invention achieve a reduction in the clinical signs of RA in a mouse model, reduce cartilage and bone damage, and reduce the IL-17 inflammatory response, and so they may be useful in the treatment or prevention of RA. RA is a systemic inflammatory disorder that primarily affects joints. RA is associated with an inflammatory response that results in swelling of joints, synovial hyperplasia, and destruction of cartilage and bone. IL-17 and Thl7 cells may have a key role in RA, for example because IL-17 inhibits matrix production in chondrocytes and osteoblasts and activates the production and function of matrix metalloproteinases and because RA disease activity is correlated to IL-17 levels and Th-17 cell numbers [27,28], so the compositions of the invention may be particularly effective for preventing or treating RA. In certain embodiments, the compositions of the invention are for use in lowering IL-17 levels or preventing elevation of IL-17 levels in the treatment or prevention of RA. In certain embodiments, treatment with compositions of the invention provides a reduction or prevents an elevation in IL-17 levels, in particular IL-17A levels. In certain embodiments, treatment with compositions of the invention provides a reduction or prevents an elevation in IFN-γ or IL-6 levels. In certain embodiments, treatment with the compositions of the invention results in a reduction in the swelling of joints. In certain embodiments, the compositions of the invention are for use in patients with swollen joints or patients identified as at risk of having swollen joints. In certain embodiments, the compositions of the invention are for use in a method of reducing joint swelling in RA.
In certain embodiments, treatment with the compositions of the invention results in a reduction in cartilage damage or bone damage. In certain embodiments, the compositions of the invention are for use in reducing or preventing cartilage or bone damage in the treatment of RA. In certain embodiments, the compositions are for use in treating patient with severe RA that are at risk of cartilage or bone damage.
Increased IL-17 levels and Thl7 cell numbers are associated with cartilage and bone destruction in RA [27,28]. IL-17 is known to activate matrix destruction in cartilage and bone tissue and IL-17 has an inhibitory effect on matrix production in chondrocytes and osteoblasts. Therefore, in certain embodiments, the compositions of the invention are for use in preventing bone erosion or cartilage damage in the treatment of RA. In certain embodiments, the compositions are for use in treating patients that exhibit bone erosion or cartilage damage or patients identified as at risk of bone erosion or cartilage damage.
TNF-a is also associated with RA, but TNF-a is not involved in the pathogenesis of the later stages of the disease. In contrast, IL-17 has a role throughout all stages of chronic disease [29]. Therefore, in certain embodiments the compositions of the invention are for use in treating chronic RA or late-stage RA, such as disease that includes joint destruction and loss of cartilage. In certain embodiments, the compositions of the invention are for treating patients that have previously received anti-TNF-a therapy. In certain embodiments, the patients to be treated do not respond or no longer respond to anti- TNF-a therapy.
The compositions of the invention may be useful for modulating a patient's immune system, so in certain embodiments the compositions of the invention are for use in preventing RA in a patient that has been identified as at risk of RA, or that has been diagnosed with early-stage RA. The compositions of the invention may be useful for preventing the development of RA.
The compositions of the invention may be useful for managing or alleviating RA. The compositions of the invention may be particularly useful for reducing symptoms associated with joint swelling or bone destruction. Treatment or prevention of RA may refer to, for example, an alleviation of the severity of symptoms or a reduction in the frequency of exacerbations or the range of triggers that are a problem for the patient.
Multiple sclerosis
In preferred embodiments, the compositions of the invention are for use in treating or preventing multiple sclerosis. The examples demonstrate that the compositions of the invention achieve a reduction in the disease incidence and disease severity in a mouse model of multiple sclerosis (the EAE model), and so they may be useful in the treatment or prevention of multiple sclerosis. Multiple sclerosis is an inflammatory disorder associated with damage to the myelin sheaths of neurons, particularly in the brain and spinal column. Multiple sclerosis is a chronic disease, which is progressively incapacitating and which evolves in episodes. IL-17 and Thl7 cells may have a key role in multiple sclerosis, for example because IL-17 levels may correlate with multiple sclerosis lesions, IL-17 can disrupt blood brain barrier endothelial cell tight junctions, and Thl7 cells can migrate into the central nervous system and cause neuronal loss [30,31]. Therefore, the compositions of the invention may be particularly effective for preventing or treating multiple sclerosis.
In certain embodiments, treatment with the compositions of the invention results in a reduction in disease incidence or disease severity. In certain embodiments, the compositions of the invention are for use in reducing disease incidence or disease severity. In certain embodiments, treatment with the compositions of the invention prevents a decline in motor function or results in improved motor function. In certain embodiments, the compositions of the invention are for use in preventing a decline in motor function or for use in improving motor function. In certain embodiments, treatment with the compositions of the invention prevents the development of paralysis. In certain embodiments, the compositions of the invention are for use in preventing paralysis in the treatment of multiple sclerosis.
The compositions of the invention may be useful for modulating a patient's immune system, so in certain embodiments the compositions of the invention are for use in preventing multiple sclerosis in a patient that has been identified as at risk of multiple sclerosis, or that has been diagnosed with early- stage multiple sclerosis or "relapsing-remitting" multiple sclerosis. The compositions of the invention may be useful for preventing the development of sclerosis. Indeed, the examples show that administration of compositions of the invention prevented the development of disease in many mice.
The compositions of the invention may be useful for managing or alleviating multiple sclerosis. The compositions of the invention may be particularly useful for reducing symptoms associated with multiple sclerosis. Treatment or prevention of multiple sclerosis may refer to, for example, an alleviation of the severity of symptoms or a reduction in the frequency of exacerbations or the range of triggers that are a problem for the patient.
Cancer
In preferred embodiments, the compositions of the invention are for use in treating or preventing cancer. IL-17 and the Th 17 pathway have central roles in cancer development and progression, and so the compositions of the invention may be useful for treating or preventing cancer.
Although the roles of IL-17 and Thl7 cells in cancer are not fully understood, numerous pro-tumour effects of IL-17 and Thl7 cells are known. For example, Thl7 cells and IL-17 can promote angiogenesis, increase proliferation and survival of tumor cells and activate tumour-promoting transcription factors [32-34].
In certain embodiments, treatment with the compositions of the invention results in a reduction in tumour size or a reduction in tumour growth. In certain embodiments, the compositions of the invention are for use in reducing tumour size or reducing tumour growth. The compositions of the invention may be effective for reducing tumour size or growth. In certain embodiments, the compositions of the invention are for use in patients with solid tumours. In certain embodiments, the compositions of the invention are for use in reducing or preventing angiogenesis in the treatment of cancer. IL-17 and Thl7 cells have central roles in angiogenesis. In certain embodiments, the compositions of the invention are for use in preventing metastasis.
In certain embodiments, the compositions of the invention are for use in treating or preventing breast cancer. The compositions of the invention may be effective for treating breast cancer, and IL-17 and Thl7 cells have important roles in breast cancer [35]. In certain embodiments, the compositions of the invention are for use in reducing tumour size, reducing tumour growth, or reducing angiogenesis in the treatment of breast cancer. In preferred embodiments the cancer is mammary carcinoma. In preferred embodiments the cancer is stage IV breast cancer.
In certain embodiments, the compositions of the invention are for use in treating or preventing lung cancer. The compositions of the invention may be effective for treating lung cancer, and IL-17 and Thl7 cells have important roles in lung cancer [36]. In certain embodiments, the compositions of the invention are for use in reducing tumour size, reducing tumour growth, or reducing angiogenesis in the treatment of lung cancer. In preferred embodiments the cancer is lung carcinoma.
In certain embodiments, the compositions of the invention are for use in treating or preventing liver cancer. The compositions of the invention may be effective for treating liver cancer, and IL-17 and Thl7 cells have important roles in liver cancer [37]. In certain embodiments, the compositions of the invention are for use in reducing tumour size, reducing tumour growth, or reducing angiogenesis in the treatment of liver cancer. In preferred embodiments the cancer is hepatoma (hepatocellular carcinoma).
In certain embodiments, the compositions of the invention are for use in treating or preventing carcinoma. The compositions of the invention may be particularly effective for treating carcinoma. In certain embodiments, the compositions of the invention are for use in treating or preventing non- immunogenic cancer. The compositions of the invention may be effective for treating non- immunogenic cancers.
In further embodiments, the compositions of the invention are for use in treating or preventing acute lymphoblastic leukemia (ALL), acute myeloid leukemia, adrenocortical carcinoma, basal-cell carcinoma, bile duct cancer, bladder cancer, bone tumor, osteosarcoma/malignant fibrous histiocytoma, brainstem glioma, brain tumor, cerebellar astrocytoma, cerebral astrocytoma/malignant glioma, ependymoma, medulloblastoma, supratentorial primitive neuroectodermal tumors, breast cancer, bronchial adenomas/carcinoids, Burkitt's lymphoma, carcinoid tumor, cervical cancer, chronic lymphocytic leukemia, chronic myelogenous leukemia, chronic myeloproliferative disorders, colon cancer, cutaneous T-cell lymphoma, endometrial cancer, ependymoma, esophageal cancer, Ewing's sarcoma, intraocular melanoma, retinoblastoma, gallbladder cancer, gastric cancer, gastrointestinal carcinoid tumor, gastrointestinal stromal tumor (GIST), germ cell tumor, glioma, childhood visual pathway and hypothalamic, Hodgkin lymphoma, melanoma, islet cell carcinoma, Kaposi sarcoma, renal cell cancer, laryngeal cancer, leukaemias, lymphomas, mesothelioma, neuroblastoma, non- Hodgkin lymphoma, oropharyngeal cancer, osteosarcoma, ovarian cancer, pancreatic cancer, parathyroid cancer, pharyngeal cancer, pituitary adenoma, plasma cell neoplasia, prostate cancer, renal cell carcinoma, retinoblastoma, sarcoma, testicular cancer, thyroid cancer, or uterine cancer.
The compositions of the invention may be particularly effective when used in combination with further therapeutic agents. The immune-modulatory effects of the compositions of the invention may be effective when combined with more direct anti-cancer agents. Therefore, in certain embodiments, the invention provides a composition comprising a bacterial strain of the genus Bacteroides and an anticancer agent. In preferred embodiments the anticancer agent is an immune checkpoint inhibitor, a targeted antibody immunotherapy, a CAR-T cell therapy, an oncolytic virus, or a cytostatic drug. In preferred embodiments, the composition comprises an anti-cancer agent selected from the group consisting of: Yervoy (ipilimumab, BMS); Keytruda (pembrolizumab, Merck); Opdivo (nivolumab, BMS); MEDI4736 (AZ/Medlmmune); MPDL3280A (Roche/Genentech); Tremelimumab (AZ/Medlmmune); CT-011 (pidi zumab, CureTech); BMS-986015 ( rilumab, BMS); MEDI0680 (AZ/Medlmmune); MSB-0010718C (Merck); PF-05082566 (Pfizer); MEDI6469 (AZ/Medlmmune); BMS-986016 (BMS); BMS-663513 (urelumab, BMS); IMP321 (Prima Biomed); LAG525 (Novartis); ARGX-110 (arGEN-X); PF-05082466 (Pfizer); CDX-1127 (var lumab; CellDex Therapeutics); TRX- 518 (GITR Inc.); MK-4166 (Merck); JTX-2011 (Jounce Therapeutics); ARGX-115 (arGEN-X); NLG-9189 (lndoximod, NewLink Genetics); INCB024360 (Incyte); IPH2201 (Innate Immotherapeutics/AZ); NLG-919 (NewLink Genetics); anti- VISTA (JnJ); Epacadostat (INCB24360, Incyte); F001287 (Flexus/BMS); CP 870893 (University of Pennsylvania); MGA271 (Macrogenix); Emactuzumab (Roche/Genentech); Galunisertib (Eli Lilly); Ulocuplumab (BMS); BKT140/BL8040 (Biokine Therapeutics); Bavituximab (Peregrine Pharmaceuticals); CC 90002 (Celgene); 852A (Pfizer); VTX-2337 (VentiRx Pharmaceuticals); IMO-2055 (Hybridon, Idera Pharmaceuticals); LY2157299 (Eli Lilly); EW-7197 (Ewha Women's University, Korea); Vemurafenib (Plexxikon); Dabrafemb (Genentech/GSK); BMS-777607 (BMS); BLZ945 (Memorial Sloan-Kettering Cancer Centre); Unituxin (dinutuximab, United Therapeutics Corporation); Blincyto (blinatumomab, Amgen); Cyramza (ramucirumab, Eli Lilly); Gazyva (obinutuzumab, Roche/Biogen); Kadcyla (ado- trastuzumab emtansine, Roche/Genentech); Perjeta (pertuzumab, Roche/Genentech); Adcetris (brentuximab vedotin, Takeda/Millennium); Arzerra (ofatumumab, GSK); Vectibix (panitumumab, Amgen); Avastin (bevacizumab, Roche/Genentech); Erbitux (cetuximab, BMS/Merck); Bexxar (tositumomab-1131, GSK); Zevalin (ibritumomab tiuxetan, Biogen); Campath (alemtuzumab, Bayer); Mylotarg (gemtuzumab ozogamicin, Pfizer); Herceptin (trastuzumab, Roche/Genentech); Rituxan (rituximab, Genentech/Biogen); volociximab (Abbvie); Enavatuzumab (Abbvie); ABT-414 (Abbvie); Elotuzumab (Abbvie/BMS); ALX-0141 (Ablynx); Ozaralizumab (Ablynx); Actimab-C (Actinium); Actimab-P (Actinium); Milatuzumab-dox (Actinium); Emab-SN-38 (Actinium); Naptumonmab estafenatox (Active Biotech); AFM13 (Affimed); AFM11 (Affimed); AGS-16C3F (Agensys); AGS- 16M8F (Agensys); AGS-22ME (Agensys); AGS-15ME (Agensys); GS-67E (Agensys); ALXN6000 (samalizumab, Alexion); ALT-836 (Altor Bioscience); ALT-801 (Altor Bioscience); ALT-803 (Altor Bioscience); AMG780 (Amgen); AMG 228 (Amgen); AMG820 (Amgen); AMG172 (Amgen); AMG595 (Amgen); AMG110 (Amgen); AMG232 (adecatumumab, Amgen); AMG211 (Amgen/Medlmmune); BAY20-10112 (Amgen/Bayer); Rilotumumab (Amgen); Denosumab (Amgen); AMP-514 (Amgen); MEDI575 (AZ/Medlmmune); MEDI3617 (AZ/Medlmmune); MEDI6383 (AZ/Medlmmune); MEDI551 (AZ/Medlmmune); Moxetumomab pasudotox (AZ/Medlmmune); MEDI565 (AZ/Medlmmune); MEDI0639 (AZ/Medlmmune); MEDI0680 (AZ/Medlmmune); MEDI562 (AZ/Medlmmune); AV-380 (AVEO); AV203 (AVEO); AV299 (AVEO); BAY79-4620 (Bayer); Anetumab ravtansine (Bayer); vantictumab (Bayer); BAY94-9343 (Bayer); Sibrotuzumab (Boehringer Ingleheim); BI-836845 (Boehringer Ingleheim); B-701 (BioClin); BIIB015 (Biogen); Obinutuzumab (Biogen/Genentech); BI-505 (Bioinvent); BI-1206 (Bioinvent); TB-403 (Bioinvent); BT-062 (Biotest) BIL-OlOt (Biosceptre); MDX-1203 (BMS); MDX-1204 (BMS); Necitumumab (BMS); CAN-4 (Cantargia AB); CDX-011 (Celldex); CDX1401 (Celldex); CDX301 (Celldex); U3-1565 (Daiichi Sankyo); patritumab (Daiichi Sankyo); tigatuzumab (Daiichi Sankyo); nimotuzumab (Daiichi Sankyo); DS-8895 (Daiichi Sankyo); DS-8873 (Daiichi Sankyo); DS- 5573 (Dahchi Sankyo); MORab-004 (Eisai); MORab-009 (Eisai); MORab-003 (Eisai); MORab-066 (Eisai); LY3012207 (E Lilly); LY2875358 (E Lilly); LY2812176 (E Lilly); LY3012217(Eh Lilly); LY2495655 (E Lilly); LY3012212 (Eli Lilly); LY3012211 (E Lilly); LY3009806 (E Lilly); cixutumumab (Eli Lilly); Flanvotumab (Eli Lilly); IMC-TR1 (Eli Lilly); Ramucirumab (Eli Lilly); Tabalumab (Eli Lilly); Zanolimumab (Emergent Biosolution); FG-3019 (FibroGen); FPA008 (Five Prime Therapeutics); FP-1039 (Five Prime Therapeutics); FPA144 (Five Prime Therapeutics); catumaxomab (Fresenius Biotech); IMAB362 (Ganymed); IMAB027 (Ganymed); HuMax-CD74 (Genmab); HuMax-TFADC (Genmab); GS-5745 (Gilead); GS-6624 (Gilead); OMP-21M18 (demcizumab, GSK); mapatumumab (GSK); IMGN289 (ImmunoGen); IMGN901 (ImmunoGen); IMGN853 (ImmunoGen); IMGN529 (ImmunoGen); IMMU-130 (Immunomedics); milatuzumab-dox (Immunomedics); IMMU-115 (Immunomedics); IMMU-132 (Immunomedics); IMMU-106 (Immunomedics); IMMU-102 (Immunomedics); Epratuzumab (Immunomedics); Clivatuzumab (Immunomedics); IPH41 (Innate Immunotherapeutics); Daratumumab (Janssen/Genmab); CNTO-95 (Intetumumab, Janssen); CNTO-328 (siltuximab, Janssen); KB004 (KaloBios); mogamulizumab (Kyowa Hakko Kirrin); KW-2871 (ecromeximab, Life Science); Sonepcizumab (Lpath); Margetuximab (Macrogenics); Enoblituzumab (Macrogenics); MGD006 (Macrogenics); MGF007 (Macrogenics); MK-0646 (dalotuzumab, Merck); MK-3475 (Merck); Sym004 (Symphogen/Merck Serono); DI17E6 (Merck Serono); MOR208 (Morphosys); MOR202 (Morphosys); Xmab5574 (Morphosys); BPC-1C (ensituximab, Precision Biologies); TAS266 (Novartis); LFA102 (Novartis); BHQ880 (Novartis/Morphosys); QGE031 (Novartis); HCD122 (lucatumumab, Novartis); LJM716 (Novartis); AT355 (Novartis); OMP-21M18 (Demcizumab, OncoMed); OMP52M51 (Oncomed/GSK); OMP-59R5 (Oncomed/GSK); vantictumab (Oncomed/Bayer); CMC-544 (inotuzumab ozogamicin, Pfizer); PF-03446962 (Pfizer); PF-04856884 (Pfizer); PSMA-ADC (Progenies); REGN1400 (Regeneron); REGN910 (nesvacumab, Regeneron/Sanofi); REGN421 (enoticumab, Regeneron/Sanofi); RG7221, RG7356, RG7155, RG7444, RG7116, RG7458, RG7598, RG7599, RG7600, RG7636, RG7450, RG7593, RG7596, DCDS3410A, RG7414 (parsatuzumab), RG7160 (imgatuzumab), RG7159 (obintuzumab), RG7686, RG3638 (onartuzumab), RG7597 (Roche/Genentech); SAR307746 (Sanofi); SAR566658 (Sanofi); SAR650984 (Sanofi); SAR153192 (Sanofi); SAR3419 (Sanofi); SAR256212 (Sanofi), SGN-LIV1A (lintuzumab, Seattle Genetics); SGN-CD33A (Seattle Genetics); SGN-75 (vorsetuzumab mafodotin, Seattle Genetics); SGN-19A (Seattle Genetics) SGN-CD70A (Seattle Genetics); SEA-CD40 (Seattle Genetics); ibritumomab tiuxetan (Spectrum); MLN0264 (Takeda); ganitumab (Takeda/Amgen); CEP-37250 (Teva); TB-403 (Thrombogenic); VB4-845 (Viventia); Xmab2512 (Xencor); Xmab5574 (Xencor); nimotuzumab (YM Biosciences); Carlumab (Janssen); NY-ESO TCR (Adaptimmune); MAGE- A- 10 TCR (Adaptimmune); CTL019 (Novartis); JCAR015 (Juno Therapeutics); KTE-C19 CAR (Kite Pharma); UCART19 (Cellectis); BPX-401 (Bellicum Pharmaceuticals); BPX-601 (Bellicum Pharmaceuticals); ATTCK20 (Unum Therapeutics); CAR-NKG2D (Celyad); Onyx-015 (Onyx Pharmaceuticals); HI 01 (Shanghai Sunwaybio); DNX-2401 (DNAtnx); VCN-01 (VCN Biosciences); Colo-Adl (PsiOxus Therapeutics); ProstAtak (Advantagene); Oncos-102 (Oncos Therapeutics); CG0070 (Cold Genesys); Pexa-vac (JX-594, Jennerex Biotherapeutics); GL-ONCl (Genelux); T-VEC (Amgen); G207 (Medigene); HF10 (Takara Bio); SEPREHVIR (HSV1716, Virttu Biologies); OnenXOlO (OnenGene Biotechnology); Reolysin (Oncolytics Biotech); SW-001 (Neotropix); Cacatak (CVA21, Viralytics); Alimta (Eli Lilly), cisplatin, oxaliplatin, irinotecan, folinic acid, methotrexate, cyclophosphamide, 5- fluorouracil, Zykadia (Novartis), Tafinlar (GSK), Xalkori (Pfizer), Iressa (AZ), Gilotrif (Boehringer Ingelheim), Tarceva (Astellas Pharma), Halaven (Eisai Pharma), Veliparib (Abbvie), AZD9291 (AZ), Alectinib (Chugai), LDK378 (Novartis), Genetespib (Synta Pharma), Tergenpumatucel-L (NewLink Genetics), GV1001 (Kael-GemVax), Tivantimb (ArQule); Cytoxan (BMS); Oncovin (Eli Lilly); Adriamycin (Pfizer); Gemzar (Eli Lilly); Xeloda (Roche); Ixempra (BMS); Abraxane (Celgene); Trelstar (Debiopharm); Taxotere (Sanofi); Nexavar (Bayer); IMMU-132 (Immunomedics); E7449 (Eisai); Thermodox (Celsion); Cometriq (Exellxis); Lonsurf (Taiho Pharmaceuticals); Camptosar (Pfizer); UFT (Taiho Pharmaceuticals); and TS-1 (Taiho Pharmaceuticals).
Uveitis
In further preferred embodiments, the compositions of the invention are for use in treating or preventing uveitis. The compositions of the invention may achieve a reduction in disease incidence and disease severity in an animal model of uveitis and so they may be useful in the treatment or prevention of uveitis. Uveitis is inflammation of the uvea and can result in retinal tissue destruction. It can present in different anatomical forms (anterior, intermediate, posterior or diffuse) and result from different, but related, causes, including systemic autoimmune disorders. IL-17 and the Thl7 pathway are centrally involved in uveitis, so the compositions of the invention may be particularly effective for preventing or treating uveitis. References [38-45] describe elevated serum levels of interleukin-17A in uveitis patients, specific association of IL17A genetic variants with panuveitis, the role of Thl7- associated cytokines in the pathogenesis of experimental autoimmune uveitis, the imbalance between Thl7 Cells and regulatory T Cells during monophasic experimental autoimmune uveitis, the up- regulation of IL-17A in patients with uveitis and active Adamantiades-Behcet and Vogt-Koyanagi- Harada (VKH) diseases, the treatment of non- infectious uveitis with secukinumab (anti-IL-17A antibody), and Thl7 in uveitic eyes.
In certain embodiments, the uveitis is posterior uveitis. Posterior uveitis presents primarily with inflammation of the retina and choroid and the compositions of the invention may be effective for reducing retinal inflammation and damage.
In certain embodiments, treatment with the compositions of the invention results in a reduction in retinal damage. In certain embodiments, the compositions of the invention are for use in reducing or preventing retinal damage in the treatment of uveitis. In certain embodiments, the compositions are for use in treating patients with severe uveitis that are at risk of retinal damage. In certain embodiments, treatment with the compositions of the invention results in a reduction in optic disc inflammation. In certain embodiments, the compositions of the invention are for use in reducing or preventing optic disc inflammation. In certain embodiments, treatment with the compositions of the invention results in a reduction in retinal tissue infiltration by inflammatory cells. In certain embodiments, the compositions of the invention are for use in reducing retinal tissue infiltration by inflammatory cells. In certain embodiments, treatment with the compositions of the invention results in vision being maintained or improved. In certain embodiments, the compositions of the invention are for use in maintaining or improving vision.
In certain embodiments, the compositions are for use in treating or preventing uveitis associated with a non-infectious or autoimmune disease, such as Behcet disease, Crohn's disease, Fuchs heterochromic iridocyclitis, granulomatosis with polyangiitis, HLA-B27 related uveitis, juvenile idiopathic arthritis, sarcoidosis, spondyloarthritis, sympathetic ophthalmia, tubulointerstitial nephritis and uveitis syndrome or Vogt-Koyanagi-Harada syndrome. IL-17A has been shown to be involved in, for example, Behcet and Vogt-Koyanagi-Harada diseases.
Treatment or prevention of uveitis may refer to, for example, an alleviation of the severity of symptoms or a prevention of relapse.
Modes of administration
Preferably, the compositions of the invention are to be administered to the gastrointestinal tract in order to enable delivery to and / or partial or total colonisation of the intestine with the bacterial strain of the invention. Generally, the compositions of the invention are administered orally, but they may be administered rectally, intranasally, or via buccal or sublingual routes.
In certain embodiments, the compositions of the invention may be administered as a foam, as a spray or a gel. In certain embodiments, the compositions of the invention may be administered as a suppository, such as a rectal suppository, for example in the form of a theobroma oil (cocoa butter), synthetic hard fat (e.g. suppocire, witepsol), glycero-gelatin, polyethylene glycol, or soap glycerin composition.
In certain embodiments, the composition of the invention is administered to the gastrointestinal tract via a tube, such as a nasogastric tube, orogastric tube, gastric tube, jejunostomy tube (J tube), percutaneous endoscopic gastrostomy (PEG), or a port, such as a chest wall port that provides access to the stomach, jejunum and other suitable access ports.
The compositions of the invention may be administered once, or they may be administered sequentially as part of a treatment regimen. In certain embodiments, the compositions of the invention are to be admini stered daily .
In certain embodiments of the invention, treatment according to the invention is accompanied by assessment of the patient's gut microbiota. Treatment may be repeated if delivery of and / or partial or total colonisation with the strain of the invention is not achieved such that efficacy is not observed, or treatment may be ceased if delivery and / or partial or total colonisation is successful and efficacy is observed.
In certain embodiments, the composition of the invention may be administered to a pregnant animal, for example a mammal such as a human in order to prevent an inflammatory or autoimmune disease developing in her child in utero and / or after it is born.
The compositions of the invention may be administered to a patient that has been diagnosed with a disease or condition mediated by IL-17 or the Thl7 pathway, or that has been identified as being at risk of a disease or condition mediated by IL-17 or the Thl7 pathway. The compositions may also be administered as a prophylactic measure to prevent the development of diseases or conditions mediated by IL-17 or the Thl7 pathway in a healthy patient.
The compositions of the invention may be administered to a patient that has been identified as having an abnormal gut microbiota. For example, the patient may have reduced or absent colonisation by Bacteroides, and in particular Bacteroides coprocola.
The compositions of the invention may be administered as a food product, such as a nutritional supplement.
Generally, the compositions of the invention are for the treatment of humans, although they may be used to treat animals including monogastric mammals such as poultry, pigs, cats, dogs, horses or rabbits. The compositions of the invention may be useful for enhancing the growth and performance of animals. If administered to animals, oral gavage may be used. Compositions
Generally, the composition of the invention comprises bacteria. In preferred embodiments of the invention, the composition is formulated in freeze-dried form. For example, the composition of the invention may comprise granules or gelatin capsules, for example hard gelatin capsules, comprising a bacterial strain of the invention.
Preferably, the composition of the invention comprises lyophilised bacteria. Lyophilisation of bacteria is a well-established procedure and relevant guidance is available in, for example, references [46-48].
Alternatively, the composition of the invention may comprise a live, active bacterial culture.
In preferred embodiments, the composition of the invention is encapsulated to enable delivery of the bacterial strain to the intestine. Encapsulation protects the composition from degradation until delivery at the target location through, for example, rupturing with chemical or physical stimuli such as pressure, enzymatic activity, or physical disintegration, which may be triggered by changes in pH. Any appropriate encapsulation method may be used. Exemplary encapsulation techniques include entrapment within a porous matrix, attachment or adsorption on solid carrier surfaces, self-aggregation by flocculation or with cross-linking agents, and mechanical containment behind a microporous membrane or a microcapsule. Guidance on encapsulation that may be useful for preparing compositions of the invention is available in, for example, references [49] and [50].
The composition may be administered orally and may be in the form of a tablet, capsule or powder. Encapsulated products are preferred because Bacteroides are anaerobes. Other ingredients (such as vitamin C, for example), may be included as oxygen scavengers and prebiotic substrates to improve the delivery and / or partial or total colonisation and survival in vivo. Alternatively, the probiotic composition of the invention may be administered orally as a food or nutritional product, such as milk or whey based fermented dairy product, or as a pharmaceutical product.
The composition may be formulated as a probiotic.
A composition of the invention includes a therapeutically effective amount of a bacterial strain of the invention. A therapeutically effective amount of a bacterial strain is sufficient to exert a beneficial effect upon a patient. A therapeutically effective amount of a bacterial strain may be sufficient to result in delivery to and / or partial or total colonisation of the patient's intestine.
A suitable daily dose of the bacteria, for example for an adult human, may be from about 1 x 103 to about 1 x 1011 colony forming units (CFU); for example, from about 1 x 107 to about 1 x 1010 CFU; in another example from about 1 x 106 to about 1 x 1010 CFU.
In certain embodiments, the composition contains the bacterial strain in an amount of from about 1 x 106 to about 1 x 1011 CFU/g, respect to the weight of the composition; for example, from about 1 x 108 to about 1 x 1010 CFU/g. The dose may be, for example, 1 g, 3g, 5g, and lOg. Typically, a probiotic, such as the composition of the invention, is optionally combined with at least one suitable prebiotic compound. A prebiotic compound is usually a non-digestible carbohydrate such as an oligo- or polysaccharide, or a sugar alcohol, which is not degraded or absorbed in the upper digestive tract. Known prebiotics include commercial products such as inulin and transgalacto- oligosaccharides.
In certain embodiments, the probiotic composition of the present invention includes a prebiotic compound in an amount of from about 1 to about 30% by weight, respect to the total weight composition, (e.g. from 5 to 20% by weight). Carbohydrates may be selected from the group consisting of: fructo- oligosaccharides (or FOS), short-chain fructo-oligosaccharides, inulin, isomalt- oligosaccharides, pectins, xylo-oligosaccharides (or XOS), chitosan-oligosaccharides (or COS), beta- glucans, arable gum modified and resistant starches, polydextrose, D-tagatose, acacia fibers, carob, oats, and citrus fibers. In one aspect, the prebiotics are the short-chain fructo-oligosaccharides (for simplicity shown herein below as FOSs-c.c); said FOSs-c.c. are not digestible carbohydrates, generally obtained by the conversion of the beet sugar and including a saccharose molecule to which three glucose molecules are bonded.
The compositions of the invention may comprise pharmaceutically acceptable excipients or carriers. Examples of such suitable excipients may be found in the reference [51]. Acceptable carriers or diluents for therapeutic use are well known in the pharmaceutical art and are described, for example, in reference [52]. Examples of suitable carriers include lactose, starch, glucose, methyl cellulose, magnesium stearate, mannitol, sorbitol and the like. Examples of suitable diluents include ethanol, glycerol and water. The choice of pharmaceutical carrier, excipient or diluent can be selected with regard to the intended route of administration and standard pharmaceutical practice. The pharmaceutical compositions may comprise as, or in addition to, the carrier, excipient or diluent any suitable binder(s), lubricant(s), suspending agent(s), coating agent(s), solubilising agent(s). Examples of suitable binders include starch, gelatin, natural sugars such as glucose, anhydrous lactose, free-flow lactose, beta-lactose, com sweeteners, natural and synthetic gums, such as acacia, tragacanth or sodium alginate, carboxymethyl cellulose and polyethylene glycol. Examples of suitable lubricants include sodium oleate, sodium stearate, magnesium stearate, sodium benzoate, sodium acetate, sodium chloride and the like. Preservatives, stabilizers, dyes and even flavouring agents may be provided in the pharmaceutical composition. Examples of preservatives include sodium benzoate, sorbic acid and esters of p-hydroxybenzoic acid. Antioxidants and suspending agents may be also used.
The compositions of the invention may be formulated as a food product. For example, a food product may provide nutritional benefit in addition to the therapeutic effect of the invention, such as in a nutritional supplement. Similarly, a food product may be formulated to enhance the taste of the composition of the invention or to make the composition more attractive to consume by being more similar to a common food item, rather than to a pharmaceutical composition. In certain embodiments, the composition of the invention is formulated as a milk-based product. The term "milk-based product" means any liquid or semi-solid milk- or whey- based product having a varying fat content. The milk- based product can be, e.g., cow's milk, goat's milk, sheep's milk, skimmed milk, whole milk, milk recombined from powdered milk and whey without any processing, or a processed product, such as yoghurt, curdled milk, curd, sour milk, sour whole milk, butter milk and other sour milk products. Another important group includes milk beverages, such as whey beverages, fermented milks, condensed milks, infant or baby milks; flavoured milks, ice cream; milk-containing food such as sweets.
In certain embodiments, the compositions of the invention contain a single bacterial strain or species and do not contain any other bacterial strains or species. Such compositions may comprise only de minimis or biologically irrelevant amounts of other bacterial strains or species. Such compositions may be a culture that is substantially free from other species of organism.
The compositions for use in accordance with the invention may or may not require marketing approval.
In some cases, the lyophilised bacterial strain is reconstituted prior to administration. In some cases, the reconstitution is by use of a diluent described herein.
The compositions of the invention can comprise pharmaceutically acceptable excipients, diluents or carriers.
In certain embodiments, the invention provides a pharmaceutical composition comprising: a bacterial strain of the invention; and a pharmaceutically acceptable excipient, carrier or diluent; wherein the bacterial strain is in an amount sufficient to treat a disorder when administered to a subject in need thereof; and wherein the disorder is selected from the group consisting of asthma, allergic asthma, neutrophilic asthma, osteoarthritis, psoriatic arthritis, juvenile idiopathic arthritis, neuromyelitis optica (Devic's disease), ankylosing spondylitis, spondyloarthritis, systemic lupus erythematosus, celiac disease, chronic obstructive pulmonary disease (COPD), cancer, breast cancer, colon cancer, lung cancer, ovarian cancer, uveitis, scleritis, vasculitis, Behcet's disease, atherosclerosis, atopic dermatitis, emphysema, periodontitis, allergic rhinitis, and allograft rejection.
In certain embodiments, the invention provides pharmaceutical composition comprising: a bacterial strain of the invention; and a pharmaceutically acceptable excipient, carrier or diluent; wherein the bacterial strain is in an amount sufficient to treat or prevent a disease or condition mediated by IL-17 or the Thl7 pathway. In preferred embodiments, said disease or condition is selected from the group consisting of rheumatoid arthritis, multiple sclerosis, psoriasis, inflammatory bowel disease, Crohn's disease, ulcerative colitis, celiac disease, asthma, allergic asthma, neutrophilic asthma, osteoarthritis, psoriatic arthritis, juvenile idiopathic arthritis, neuromyelitis optica (Devic's disease), ankylosing spondylitis, spondyloarthritis, systemic lupus erythematosus, chronic obstructive pulmonary disease (COPD), cancer, breast cancer, colon cancer, lung cancer, ovarian cancer, uveitis, scleritis, vasculitis, Behcet's disease, atherosclerosis, atopic dermatitis, emphysema, periodontitis, allergic rhinitis, and allograft rejection. In certain embodiments, the invention provides the above pharmaceutical composition, wherein the amount of the bacterial strain is from about 1 χ 103 to about 1 χ 1011 colony forming units per gram with respect to a weight of the composition.
In certain embodiments, the invention provides the above pharmaceutical composition, wherein the composition is administered at a dose of 1 g, 3 g, 5 g or 10 g.
In certain embodiments, the invention provides the above pharmaceutical composition, wherein the composition is administered by a method selected from the group consisting of oral, rectal, subcutaneous, nasal, buccal, and sublingual.
In certain embodiments, the invention provides the above pharmaceutical composition, comprising a carrier selected from the group consisting of lactose, starch, glucose, methyl cellulose, magnesium stearate, mannitol and sorbitol.
In certain embodiments, the invention provides the above pharmaceutical composition, comprising a diluent selected from the group consisting of ethanol, glycerol and water.
In certain embodiments, the invention provides the above pharmaceutical composition, comprising an excipient selected from the group consisting of starch, gelatin, glucose, anhydrous lactose, free-flow lactose, beta-lactose, corn sweetener, acacia, tragacanth, sodium alginate, carboxymethyl cellulose, polyethylene glycol, sodium oleate, sodium stearate, magnesium stearate, sodium benzoate, sodium acetate and sodium chloride.
In certain embodiments, the invention provides the above pharmaceutical composition, further comprising at least one of a preservative, an antioxidant and a stabilizer.
In certain embodiments, the invention provides the above pharmaceutical composition, comprising a preservative selected from the group consisting of sodium benzoate, sorbic acid and esters of p- hydroxybenzoic acid.
In certain embodiments, the invention provides the above pharmaceutical composition, wherein said bacterial strain is lyophilised.
In certain embodiments, the invention provides the above pharmaceutical composition, wherein when the composition is stored in a sealed container at about 4°C or about 25 °C and the container is placed in an atmosphere having 50% relative humidity, at least 80% of the bacterial strain as measured in colony forming units, remains after a period of at least about: 1 month, 3 months, 6 months, 1 year, 1.5 years, 2 years, 2.5 years or 3 years.
Culturing methods
The bacterial strains for use in the present invention can be cultured using standard microbiology techniques as detailed in, for example, references [53-55]. Bacterial strains of the genus Bacteroides may be cultured using a method such as that outlined below, which may provide good growth and reliability. This method is particularly useful for culturing strains of the species Bacteroides coprocola.
Bacterial strains of the genus Bacteroides, and in particular of the species Bacteroides coprocola, may be cultured by using a liquid stock to inoculate the plate (or a larger liquid culture), rather than a scrape of frozen stock as may generally be used (see, for example, reference [56]). The establishment of mature colonies is reliable and quick if frozen stocks of Bacteroides strains are thawed and used as a liquid culture.
A method suitable for culturing a bacterial strain of the genus Bacteroides, may comprise:
(a) providing a frozen stock of the bacterial strain;
(b) thawing the frozen stock to provide a liquid stock;
(c) adding the liquid stock to a solid or liquid medium; and
(d) incubating the solid or liquid media to provide a culture of the bacterial strain.
This method is particularly useful for culturing bacterial strains of Bacteroides coprocola.
The frozen stock may be a frozen glycerol stock. The solid or liquid medium may be YCFA agar or YCFA medium. YCFA medium may include (per 100ml, approximate values): Casitone (1.0 g), yeast extract (0.25 g), NaHC03 (0.4 g), cysteine (0.1 g), K2HP04 (0.045 g), KH2P04 (0.045 g), NaCl (0.09 g), (NH4)2S04 (0.09 g), MgS04 · 7H20 (0.009 g), CaCl2 (0.009 g), resazurin (0.1 mg), hemin (1 mg), biotin (1 μg), cobalamin (1 μg), p-aminobenzoic acid (3 μg), folic acid (5 μg), and pyridoxamine (15 μ§).
The incubating in step (d) may be performed for at least 36 hours, such as 48 or 72 hours. The incubating in step (d) may be performed in an anaerobic environment, such as an anaerobic hood. The culture provided in step (d) may be used to subculture a larger culture of the bacterial strain. Such subculturing allows greater amounts of bacteria to be prepared and may be useful for providing compositions of the invention at a commercial scale.
The thawing in step (b) may be performed at room temperature, or by hand warming.
The amount of liquid stock added in step (c) may be between 300μ1 and 5ml, such 500μ1. The stock may be 20% glycerol stock.
The above method may be used for preparing a pharmaceutical composition or a food product, in which case the method may comprise additional steps of isolating the bacterial strain, optionally lyophilising the bacterial strain, and combining the bacterial strain with one or more pharmaceutically acceptable excipients or carriers, or one or more food substances. This pharmaceutical composition or food product prepared by the method may be used in a method of treating or preventing a disease or condition mediated by IL-17 or the Thl7 pathway. An exemplary method of culturing bacterial strains of the genus Bacteroides, and in particular of the species Bacteroides coprocola, may comprise:
1. 500μ1 of 20% glycerol stock is plated onto YCFA agar.
2. Plates are left in the anaerobic hood for 48/72 hours to generate mature colonies.
3. The bacteria are cultured in 10ml volumes, whether this be from a single colony or a 1% liquid subculture.
4. Plates with colonies are only used for 2/3 days after mature colony morphology is achieved. Bacterial strains for use in vaccine compositions
The inventors have identified that the bacterial strains of the invention are useful for treating or preventing diseases or conditions mediated by IL-17 or the Thl7 pathway. This is likely to be a result of the effect that the bacterial strains of the invention have on the host immune system. Therefore, the compositions of the invention may also be useful for preventing diseases or conditions mediated by IL-17 or the Thl 7 pathway, when administered as vaccine compositions. In certain such embodiments, the bacterial strains of the invention may be killed, inactivated or attenuated. In certain such embodiments, the compositions may comprise a vaccine adjuvant. In certain embodiments, the compositions are for administration via injection, such as via subcutaneous injection.
General
The practice of the present invention will employ, unless otherwise indicated, conventional methods of chemistry, biochemistry, molecular biology, immunology and pharmacology, within the skill of the art. Such techniques are explained fully in the literature. See, e.g., references [57] and [58-64], etc.
The term "comprising" encompasses "including" as well as "consisting" e.g. a composition "comprising" X may consist exclusively of X or may include something additional e.g. X + Y.
The term "about" in relation to a numerical value x is optional and means, for example, x+10%.
The word "substantially" does not exclude "completely" e.g. a composition which is "substantially free" from Y may be completely free from Y. Where necessary, the word "substantially" may be omitted from the definition of the invention.
References to a percentage sequence identity between two nucleotide sequences means that, when aligned, that percentage of nucleotides are the same in comparing the two sequences. This alignment and the percent homology or sequence identity can be determined using software programs known in the art, for example those described in section 7.7.18 of ref. [65]. A preferred alignment is determined by the Smith- Waterman homology search algorithm using an affine gap search with a gap open penalty of 12 and a gap extension penalty of 2, BLOSUM matrix of 62. The Smith- Waterman homology search algorithm is disclosed in ref. [66]. Unless specifically stated, a process or method comprising numerous steps may comprise additional steps at the beginning or end of the method, or may comprise additional intervening steps. Also, steps may be combined, omitted or performed in an alternative order, if appropriate.
Various embodiments of the invention are described herein. It will be appreciated that the features specified in each embodiment may be combined with other specified features, to provide further embodiments. In particular, embodiments highlighted herein as being suitable, typical or preferred may be combined with each other (except when they are mutually exclusive).
MODES FOR CARRYING OUT THE INVENTION
Example 1 - Efficacy of bacterial inocula in a mouse model of house dust mite-induced asthma Summary
Mice were administered with compositions comprising bacterial strains according to the invention and were subsequently challenged with house dust mite (HDM) extract to elicit an allergic inflammatory response. The inflammatory response to HDM includes eosinophilic and neutrophilic components, is mediated by IL-17 andthe Thl7 pathway, and is a model for asthma. The magnitude and characteristics of the inflammatory response exhibited by mice treated with compositions of the invention were compared to control groups. The compositions of the invention were found to alleviate the inflammatory response, and to reduce recruitment of eosinophils and neutrophils, indicating that they may be useful for treating IL-17- and Thl7-mediated conditions such as eosinophilia, neutrophilia and asthma.
Strain
675 : Bacteroides coprocola
Study design
Groups:
1. Negative control group. Treatment with vehicle control (per oral).
3. Treatment with therapeutic bacteria inoculum strain 675 (per oral).
7. Positive control group. Treatment with Dexamethasone (i.p.).
8. Untreated Control Group.
Number of mice per group = 5
Day -14 to day 13: Daily administration of vehicle control per oral (Group 1).
Day -14 to day 13: Daily administration of therapeutic bacteria inoculum per oral (Group 2-6).
Day 0, 2, 4, 1, 9, 11 Administration of 15ug HDM (house dust mite extract - Catalogue number: XPB70D3 A25, Lot number: 231897, Greer Laboratories, Lenoir, NC, USA) in a volume of 30ul PBS per nasal (Group 1-8).
Day 0, 2, 4, 7, 9, 11 Administration of Dexamethasone (i.p., 3mg/kg, Sigma-Aldrich, Catalogue number Dl 159) (Group 7).
Day 14 Sacrifice of all animals for analysis.
Total number of mice = 40. Endpoints and analysis
On day 14 animals were sacrificed by lethal intraperitoneal injection with pentabarbitol (Streuli Pharma AG, Uznach, Cat: 1170139A) immediately followed by a bronchoalveolar lavage (BAL).
Cells were isolated from the BAL (bronchoalveolar lavage) fluid and differential cell counts performed (200 cell counts/ samples).
Material and Methods
Mice. Female 7 week old BALB/c mice were purchased from Charles River Laboratories and randomly allocated to cages totally 5 mice per cage (Ventilated cages sourced from Indulab AG, Gams, Switzerland Cage type: "The SealsafeTM - IVC cage. Product number 1248L). Cages were labeled with study number, group number and experimental starting date. Mice were monitored weekly and acclimatized to facility for 7 days prior to initiation of study (Study Day -14). Animals were 8 weeks old on Study Day -14. Potable water and food were available ad libitum. Cage enrichment was present. Daily care of the animals was performed according to local authorization license number 2283.1 (issued and approved by: Service de la consommation et des affaires veterinaires du Canton de Vaud). Potable water and food were available ad libitum and refreshed once daily. Cage enrichment was present. Animal welfare regulations were observed as given by official authorities of Switzerland under ordinance 455.163 of the FVO (Federal Veterinary Office) on laboratory animal husbandry, production of genetically modified animals, and methods of animal experimentation.
Culturing of bacteria inoculum. Within a sterile workstation, a cryo-vial of bacteria was thawed by warming in gloved hand and -0.7 ml of contents injected into a Hungate tube (Cat Number, 1020471, Glasgeratebau Ochs, Bovenden-Lenglern, Germany), containing 8 ml of anaerobic YCFA. Two tubes per strain were usually prepared. The Hungate tubes were then incubated (static) at 37°C for up to 24- 26 hours (for strain 675).
Since the bacterial ODs of inoculum strain 675 was found to be variable, 3 different culturing approaches were performed each day. 2 vials were cultured as described above and a third sample was cultured utilizing a 400ul aliquot from the prior day's culture for seeding. On 4 treatment days the latter approach was utilized, because of poor growth from the frozen stock. Of note, this approach resulted in robust growth of bacterial strain 675 on all occasions.
Culturing of vehicle control. A Hungate tube containing 8 ml of anaerobic YCFA was incubated (static) at 37°C for 16h.
Administration of bacteria inoculum or vehicle control. 400ul of cultured bacteria inoculum or vehicle control were administered per day per oral gavage.
Intranasal sensitization. Mice were anesthetized by i.p. injection with 9.75 mg xylasol and 48.75 mg ketasol per kg (Dr. E. Graeub AG, Bern, Switzerland) and administered with 15ug of HDM (Catalogue number: XPB70D3A25, Lot number: 231897, Greer Laboratories, Lenoir, NC, USA) in a volume of 30ul PBS per nasal.
Preparation and administration of positive control compound Dexamethasone. Dexamethasone 21-phosphate disodium salt (Sigma-Aldrich, Catalogue number D1159, Lot N° SLBD.1030V) was solved in H20 and administered to the animals in a dose of 3mg/kg in a volume of 200ul per oral at days indicated in study protocol above.
Terminal procedure. On day 14 animals were sacrificed by lethal i.p. injection with pentabarbitol (Streuli Pharma AG, Uznach, Cat: 1170139A) immediately followed by bronchoalveolar lavage (B AL) in 500 ul of saline.
Measurement of cellular infiltrates into BAL. Cells were isolated from the BAL fluid and differential cell counts were performed based upon standard morphological and cytochemical criteria.
Graphs and statistical analysis. All graphs were generated with Graphpad Prism Version 6 and a one-way ANOVA was applied. Results from the statistical analysis were provided with the individual data tables. Error bars represent Standard Error of the Mean (SEM).
Results and analysis
The results of the experiments are shown in Figures 1-9.
No morbidity or mortality was noted in the mice treated with the bacteria or the vehicle. The two controls, vehicle treatment (negative control) and the dexamethasone treatment (positive control) behaved as expected, with impaired eosinophilia and neutrophilia noted following dexamethasone treatment.
The most important results of this experiment are displayed in Figures 6 and 7, which report on the total number and percentage of neutrophils detected in bronchiolar lavage following challenge with HDM. Strain 675 reduced total neutrophils and the proportion of neutrophils in BAL relative to the vehicle-only control. Example 2 - Efficacy of bacterial inocula in a mouse model of severe neutrophilic asthma
Summary
Mice were administered with compositions comprising bacterial strains according to the invention and were subsequently sensitised with subcutaneous administrations of house dust mite (HDM) extract and challenged with an intranasal administration of HDM in order to model the inflammatory response of severe neutrophilic asthma. The magnitude and characteristics of the inflammatory response exhibited by mice treated with compositions of the invention were compared to control groups. The compositions of the invention were found to alleviate the inflammatory response, and in particular to reduce recruitment of neutrophils, in a manner comparable to the positive control comprising administrations of anti-IL-17 antibodies. The data therefore indicate that the compositions of the invention may be useful for treating IL-17- and Thl7-mediated conditions such as neutrophilia and asthma.
Strain
675 : Bacteroides coprocola
Study design
Groups:
1. Negative control group. Treatment with vehicle control (per oral).
3. Treatment with therapeutic bacteria inoculum strain 675 (per oral). 7. Positive control group. Treatment anti-IL-17 (i.p.).
8. Untreated Control Group.
9: Healthy mice (baseline).
Number of mice per group (Group 1-8) = 5 Day -14 to day 17: Daily administration of vehicle control per oral (Group 1).
Day -14 to day 17: Daily administration of therapeutic bacteria inoculum per oral (Group 2-6).
Day 0: Sensitization with HDM in CFA (s.c.) (Group 1-8).
Day 7: Sensitization with HDM in CFA (s.c.) (Group 1-8).
Day 13, 15, 17: Administration of anti IL-17 neutralizing antibody per i.p. (Group 7).
Day 14, 15, 16, 17: Challenge with HDM in 30ul PBS per nasal (Group 1-8).
Day 18: Sacrifice of all animals for analysis.
Endpoints and analysis:
On day 14 animals were sacrificed by lethal intraperitoneal injection with pentabarbitol (Streuli Pharma AG, Uznach, Cat: 1170139A) immediately followed by a bronchoalveolar lavage (BAL). Cells were isolated from the BAL fluid and differential cell counts performed (200 cell counts/ samples).
Material and Methods.
Mice. Female 7 week old C57BL/6 mice were purchased from Charles River Laboratories and randomly allocated to cages totally 5 mice per cage (Ventilated cages sourced from Indulab AG, Gams, Switzerland Cage type: "The SealsafeTM - IVC cage. Product number 1248L). Cages were labelled with study number, group number and experimental starting date. Mice were monitored weekly and acclimatized to facility for 7 days prior to initiation of study (Study Day -14). Animals were 8 weeks old on Study Day -14. Potable water and food were available ad libitum. Cage enrichment was present. Daily care of the animals was performed according to local authorization license number 2283.1 (issued and approved by: Service de la consommation et des affaires veterinaires du Canton de Vaud). Potable water and food were available ad libitum and refreshed once daily. Cage enrichment was present. Animal welfare regulations were observed as given by official authorities of Switzerland under ordinance 455.163 of the FVO (Federal Veterinary Office) on laboratory animal husbandry, production of genetically modified animals, and methods of animal experimentation. Culturing of bacteria inoculum. Within a sterile workstation, a cryo-vial of bacteria was thawed by warming in gloved hand and -0.7 ml of contents injected into a Hungate tube (Cat Number, 1020471, Glasgeratebau Ochs, Bovenden-Lenglern, Germany), containing 8 ml of anaerobic YCFA. Two tubes per strain were usually prepared. The Hungate tubes were then incubated (static) at 37°C for up to 24- 26 hours (for strain 675).
Since the bacterial ODs of inoculum strain 675 were variable, 3 different culturing approaches were performed each day. 2 vials were cultured as described above and a third sample was cultured utilizing a 400ul aliquot from the prior day's culture for seeding. On 4 treatment days the latter approach was utilized, because of poor growth from the frozen stock. Of note, this approach resulted in robust growth of bacterial strain 675 on all occasions.
Culturing of vehicle control. A Hungate tube containing 8 ml of anaerobic YCFA was incubated (static) at 37°C for 16h.
Administration of bacteria inoculum or vehicle control. 400ul of cultured bacteria inoculum or vehicle control were administered per day per oral gavage.
HDM sensitization. 50 μg of HDM (Catalogue number: XPB70D3A25, Lot number: 231897, Greer Laboratories, Lenoir, NC, USA) in PBS was emulsified in equal volume of complete Freund's adjuvant (CFA Chondrex Inc. Washington, USA) and administered subcutaneously in a volume of 200 μΐ, twice over two weeks on opposite flanks. A week after the second immunization, mice were anesthetized by i.p. injection with 9.75 mg xylasol and 48.75 mg ketasol per kg (Dr. E. Graeub AG, Bern, Switzerland) and then given intranasal challenges of 15 μg of HDM in a volume of 30ul PBS on 4 consecutive days. Analysis was performed one day after the final challenge.
Preparation and administration of positive control compound anti mouse IL-17 antibody.
Anti-IL-17 neutralizing antibody was sourced from Bio X Cell and was stored at 4°C (Clone 17F3, Cat. Number BE0173, Bio X Cell) and administered per i.p. at a dose of 12.5 mg/kg at days indicated in study protocol above.
Terminal procedure. On day 18 animals were sacrificed by lethal i.p. injection with pentabarbitol (Streuli Pharma AG, Uznach, Cat: 1170139A) immediately followed by bronchoalveolar lavage (BAL) in 500 ul of saline.
Measurement of cellular infiltrates into BAL. Cells were isolated from the BAL fluid and differential cell counts were performed based upon standard morphological and cytochemical criteria.
Graphs and statistical analysis. All graphs were generated with Graphpad Prism Version 6 and a one-way ANOVA was applied. Results from the statistical analysis are provided with the individual data tables. Error bars represent Standard Error of the Mean (SEM). Results and analysis
The results of the experiment are shown in Figures 10-18.
No morbidity or mortality was noted in the mice treated with the bacteria or the vehicle. As shown in Figures 15 and 16, strain 675 exhibited a strong effect and reduced total neutrophil numbers relative to the negative controls. In addition, strain 675 reduced eosinophil numbers relative to the controls, as shown in Figures 11 and 12.
Example 3 - Efficacy of bacterial inocula to treat arthritis in a type II collagen-induced arthritis mouse model
Materials and methods
Strain
675 : Bacteroides coprocola
Bacterial cultures
Bacterial cultures were grown up for administration in an anaerobic workstation (Don Whitley Scientific) according to the growth scheme below.
Mon/Weds/Fri: Transfer glycerol stock to ice and streak a YCFA plate from glycerol stock. Use plate as follows for a maximum of 3 days.
Daily PM: Pick single colony of each strain from plate cultures, transfer to 8 ml hungate tube containing YCFA overnight (ONI)
- AM: Subculture 80 ul (1%) ONI into fresh 8 ml tube (DC1). Use ONI culture for AM oral gavage.
PM: Use DC1 culture for PM oral gavage.
Bacterial strain #675 was grown using glycerol stocks.
Glycerol stocks were stored at -80°C. Three times per week, glycerol stocks were thawed at room temperature and streaked on YCFA plates. A new glycerol aliquot was used on each occasion. Bacteria were allowed to grow on a given plate for up to 72 hours.
Solutions to be administered to the animals were prepared twice daily with an eight hour interval for morning (AM) and afternoon (PM) treatments. A bacterial colony was picked from the streaked plate and transferred into a tube containing YCFA media. Bacterial strain #675 was allowed to grow for 16 hours before AM administrations. Bacteria were sub-cultured at 1% into YCFA media for PM administrations. OD values were recorded for each strain after morning and afternoon treatment preparations. Type II collagen-induced arthritis mouse model
Adult male DBA/1 mice were randomly allocated to experimental groups and allowed to acclimatise for two weeks. On Day 0, animals were administered by subcutaneous injection with 100 microliters of an emulsion containing 100 micrograms of type II collagen (CII) in incomplete's Freund's adjuvant supplemented with 4 mg/ml Mycobacterium tuberculosis H37Ra. On Day 21, animals were administered by subcutaneous injection with a booster emulsion containing 100 μg of type II collagen in incomplete Freund's adjuvant.
Treatments were given according to the administration schedule below. From Day -14 until the end of the experiment on Day 45, animals were weighed three times per week. From Day 21 until the end of the experiment, animals were scored three times per week for clinical signs of arthritis to include swelling of the hind- and front paws, radio-carpal (wrist) joints and tibio-tarsal (ankle) joints.
On Day 45 mice were culled and terminal blood samples were taken for cytokine analysis.
On Day -14, Day 0 and Day 45, faecal samples were collected for microbiological analysis, immediately snap-frozen and stored at -80°C.
The collagen-induced arthritis (CIA) mouse model is a well-established mouse model for rheumatoid arthritis [67]. Immunisation with CII causes a pathogenesis that includes several important pathological features of rheumatoid arthritis, including synovial hyperplasia, mononuclear cell infiltration and cartilage degradation. Significantly, the development of CIA is mediated by Thl7 cells through secretion of IL-17A [68]. The immune response underlying the arthritis model is enhanced by the use of Freund's adjuvant supplemented with Mycobacterium tuberculosis.
On Day 21, spleens were collected from three satellite animals in each group. Cells were cultured for 72 hours in the presence or absence of type II collagen. Cytokines, including TNF-a, IL-6, IFN-γ, IL- 4, IL-10 and IL-17, were quantified in the culture supernatants and in terminal serum by Luminex. Cell proliferation was quantified using a tritiated thymidine incorporation method.
Treatment Groups and Dosages
All Groups were n=15 (n=12 for the main study group and n=3 for satellite groups)
The vehicle used for the biotherapeutics was Yeast extract-Casitone-Fatty Acids (YCFA) medium. Administration Disease
Group Dose Induction
Route Regimen
1 Vehicle 5 ml/kg Day 0:
Collagen/ CFA,
5 ml/kg BID: once, SC
PO
Day -14*-End Day 21:
4 Biotherapeutic #675
Collagen/IFA,
once, SC
PO: oral gavage, SC: subcutaneous injection, BID: twice a day, CFA: complete Freund's adjuvant. * Except Group 4 treated from Day 0.
Bodyweights
From Day -14 until the end of the experiment, animals were weighed three times per week. Data were graphed (Mean ± SEM).
Non-specific clinical observations
From Day -14 until the end of the experiment, animals were checked daily for non-specific clinical signs to include abnormal posture (hunched), abnormal coat condition (piloerection) and abnormal activity levels (reduced or increased activity).
Clinical Observations
From Day 21 until the end of the experiment on Day 45, animals were scored three times per week for clinical signs of arthritis to include swelling of the hind- and front paws, radio-carpal (wrist) joints and tibio-tarsal (ankle) joints. Each limb was scored using the following scale: (0) normal, (1) slight swelling, (2) mild swelling, (3) moderate swelling and (4) severe swelling. A clinical score was calculated by adding each limb score. The maximum possible clinical score for an animal was (16). Animals with a score equal to (12) on two consecutive occasions and animals with a score greater than (12) on any one occasion were culled. Data were graphed (Mean ± SEM).
Cell proliferation analysis
On Day 21, three satellite animals per group were culled and spleens were dissected out. Spleen cells were cultured for 72 hours in presence or absence of type II Collagen. After 72 hours, cells were pulsed overnight in the presence of tritiated thymidine. Cell proliferation was quantified by measuring thymidine incorporation. Data were graphed (Mean ± SEM). Supernatants were taken and tested for the presence of key cytokines. Cytokine analysis
Terminal supernatants from the spleen cell cultures were tested in order to quantitate TNF-a, IL-6, IFN-γ, IL-4, IL-10 and IL-17 by Luminex. Data were graphed (Mean ± SEM). Microbiological analysis
On Day -14, Day 0 and Day 45, faecal samples were collected from each animal, immediately snap- frozen, and stored at -80°C. Caeca (including content) were immediately snap-frozen and stored at -80°C. A bacterial identification test was performed daily by plating the bacteria. Histopathology
At the end of the experiment, hind paws were stored in tissue fixative. Samples were transferred into decalcification solution. Tissue samples were processed, sectioned and stained with Haematoxylin & Eosin. Sections were scored by a qualified histopathologist, blind to the experimental design, for signs of arthritis to include inflammation, articular cartilage damage and damage to the underlying metaphyseal bone. A detailed scoring system was used (see below). Data were graphed (Mean ± SEM). Raw and analysed data were provided as well as representative pictures.
Table 1: Histopathology Scoring System
Grade Description
Inflammation
0 Normal joint
1 Mild synovial hyperplasia with inflammation dominated by neutrophils. Low
numbers of neutrophils and macrophages in joint space.
2 Synovial hyperplasia with moderate to marked inflammation involving both
neutrophils and macrophages. Neutrophils and macrophages in joint space;
may be some necrotic tissue debris.
3 Synovial hyperplasia with marked inflammation involving both neutrophils
and macrophages. Loss of synoviocyte lining. Inflammation may extend from synovium to surrounding tissue including muscle. Numerous neutrophils and macrophages in joint space, together with significant necrotic tissue debris.
Articular cartilage damage
0 Normal joint
1 Articular cartilage shows only mild degenerative change. Early pannus
formation may be present peripherally.
2 Articular cartilage shows moderate degenerative change and focal loss. Pannus
formation is present focally.
3 Significant disruption and loss of articular cartilage with extensive pannus
formation.
Damage to the underlying metaphyseal bone
0 Normal joint
1 No change to underlying metaphyseal bone.
2 May be focal necrosis or fibrosis of metaphyseal bone. 3 Disruption or collapse of metaphyseal bone. Extensive inflammation, necrosis or fibrosis extending to medullary space of the metaphysis.
Results and analysis
Survival and Non-specific Clinical Observations
Some animals were culled prior to the scheduled end of the study due to the severity of the clinical signs of arthritis or due to the severity of the non-specific clinical observations. One animal in Group 1 was culled (vehicle-treated, animal arrived from the supplier with broken leg).
Eleven animals were culled due to the severity of the clinical signs of arthritis: five animals in Group 1 (vehicle-treated), and six animals in Group 4 (biotherapeutic #675-treated).
Five animals were culled due to the severity of the non-specific clinical signs including abnormal posture (hunched), abnormal coat condition (piloerection), abnormal activity levels (reduced activity): three animals in Group 1 (vehicle-treated) and two animals in Group 4 (biotherapeutic #675-treated).
Bodyweights
Bodyweight data recorded from Day -14 until Day 0 and expressed as a percentage of the initial (Day -14) bodyweights were analysed by two-way ANOVA followed by Dunnett's post- test for multiple comparisons with Day -14 then for multiple comparison with the vehicle-treated group. The data are presented in Figure 19. Data from animals culled prior to the scheduled end of the experiment were excluded from the analyses.
When compared to Day -14, twice daily administrations by oral gavage induced a significant bodyweight loss in the vehicle-treated group on Day -9 and Day -7.
Group 4 (untreated until Day 0 then biotherapeutic #675 -treated) bodyweights were significantly higher than in the vehicle-treated group from Day -11 until Day -1 (p < 0.0001 except Day -4 where p < 0.05).
The bodyweights measured between Day -14 and Day -1 in the biotherapeutic-treated groups did not differ from the bodyweights measured in the vehicle-treated group on any given day.
Bodyweight data recorded from Day 0 until Day 28 and expressed as a percentage of the initial (Day 0) bodyweights were analysed by two-way ANOVA followed by Dunnett's post-test for multiple comparisons with Day 0 in the Vehicle group then for multiple comparison with the vehicle-treated group. The data are presented in Figure 20. Data from animals culled prior to the scheduled end of the experiment and from Satellite animals were excluded from the analyses. Day 28, Day 35 and Day 42 data were further analysed by one-way ANOVA followed by Dunnett's post-test for multiple comparisons to the vehicle-treated group.
The onset of clinical signs of arthritis was associated with a significant bodyweight loss on Day 26 and Day 28 (p < 0.0001) when compared to Day 0 in the vehicle-treated group.
When compared to the vehicle-treated group, the bodyweights were significantly higher in Group 4 (biotherapeutic #675-treated) on Day 3, Day 5, Day 10 (p < 0.05) and on Day 26 (p < 0.001).
When analysing the data by one-way ANOVA, the bodyweights were significantly higher in Group 4 (biotherapeutic #675-treated) when compared to the vehicle-treated group on Day 28 (p < 0.01). There was no significant difference between experimental groups on Day 35 or Day 42.
Clinical Observations
Clinical score data were analysed by two-way ANOVA followed by Dunnett's post-test for multiple comparisons between days in the vehicle-treated group then for multiple comparisons between experimental groups and the vehicle-treated group each day. The data are presented in Figure 21. Data recorded from animals culled prior to the end of the experiment were excluded from the analysis. When animals were culled due to the severity of the clinical signs of arthritis, the last recorded score was reported for the following days and used in the statistical analyses.
A significant increase of the clinical scores was observed in the vehicle-treated group from Day 28 until Day 45 (p < 0.0001 ) when compared to Day 21.
Biotherapeutic #675 did not reduce the clinical scores when compared to the vehicle-treated group. Animals in this group were immunised at a different time when compared to other experimental groups, which may explain the higher clinical scores observed.
Cell proliferation analysis
To validate the assay, splenocytes were cultured in the presence of soluble anti-CD3 and anti-CD28 (anti-CD3/CD28) as positive control stimuli to confirm the proliferative potential of the cells.
Strong proliferative responses to anti-CD3/CD28 were seen in all experimental groups, showing cells were healthy, viable and able to respond to activation signals.
To test the proliferative response in presence of Collagen II (CII), splenocytes were cultured in the presence of CII at 50 μg/ml. Splenocyte proliferative response to CII were analysed by two-way ANOVA followed by Sy dak's post-test for multiple comparisons between unstimulated and CII- stimulated splenocytes and one-way ANOVA followed by Dunnett's post- test for comparison of CII- stimulated response in different experimental groups with the vehicle-treated group. The data are presented in Figure 22.
CII induced a highly significant increase of 3H-thymidine incorporation (cpm) when compared to the unstimulated splenocytes in the vehicle-treated group (p < 0.0001).
Splenocyte proliferation for group treated with biotherapeutic #675 was set up on a different day, therefore comparison with the vehicle-treated group was not preformed, although a notable reduction was observed.
Cytokine levels in tissue culture supernatants
Levels of each cytokine were measured in tissue culture supernatants derived from anti-CD3/CD28 stimulated cultures by luminex analysis. These showed robust responses for all cytokines measured (mean levels in vehicle group were as follows: IL-4 = 6,406 pg/ml; IL-6 = 306 pg/ml; IL-10 = 10,987 pg/ml; IL-17A = 11,447 pg/ml; IFN-γ = 15,581 pg/ml; TNF-a = 76 pg/ml).
The following sections summarise the data obtained from the Collagen II-stimulated cultures. Where applicable, statistical analyses of the differences between cytokine levels in supernatants of unstimulated and Cll-stimulated splenocytes were conducted using two-way ANOVA followed by Sidak's post-test for multiple comparisons, while one-way ANOVA followed by Dunnett's post- test was used for comparison of Cll-stimulated response in biotherapeutic-treated groups with the vehicle- treated group. There was no significant difference in cytokine levels between the groups in both cases. This is likely due to the small sample size used (n=3).
In order to more accurately present the distribution of the data for the cytokines with substantial spread of the data, these are presented as scatter plots.
The group means of IL-4 in tissue culture supernatants after stimulation with CII were <5pg/ml. These are not considered biologically significant and not included here. The group means of TNF-a in tissue culture supernatants after stimulation with collagen were below limit of quantitation. Supernatant levels of IFN-γ (Figure 23)
Along with IL-17, IFN-γ is the major cytokine driving disease in the CIA model. The scatter plot in Figure 23 demonstrates IFN-γ levels after CII stimulation, with group median being higher for the Vehicle-treated group compared to the biotherapeutic (see Figure 27).
Supernatant levels of IL-17A (Figure 24)
Levels of IL-17A were 50pg/ml in Cll-stimulated cultures for the Vehicle-treated group. The levels of this cytokine appeared to be lower in the biotherapeutic group compared to the Vehicle-treated group (see Figure 27).
Supernatant levels of IL-10 (Figure 25)
Levels of IL-10 in Vehicle-treated group were 13 pg/ml and 2.1 pg/ml for Cll-stimulated, and media control cultures, respectively. Higher levels of IL-10 (which is an anti-inflammatory cytokine) for the vehicle-treated group may be expected because inflammation and pro-inflammatory cytokine induction could be accompanied by an anti-inflammatory feedback mechanism. Supernatant levels of IL-6 (Figure 26)
Inflammatory cytokines such as IL-6 and TNF-a are not typically produced at high levels in anti-CII cultures. However, their levels may be altered as a result of immune modulation. Levels of IL-6 in CII- stimulated cultures were modest, reaching lOpg/ml. Although higher than in media control cultures, these differences were too small to provide rationale for performing statistical analyses.
Tissue culture supernatants in Group 4 - Biotherapeutic #675 (Figure 27)
Splenocyte cultures for this group were set up on a different day and are therefore separate from the Vehicle-treated group. Although direct comparisons may not be appropriate, it appears that treatment with Biotherapeutic #675 was effective at lowering IFN-γ, IL-17A and IL-6 levels.
Microbiological analysis
Bacterial growth was confirmed by measuring the optical density at 600 nm using a spectrophotometer. Bacterial identity was confirmed by comparing streaked plate pictures to reference pictures.
Following the improved bacterial preparation method, consistently high doses of bacterial strain were administered from Day -2 and Day -3 (except for strain #675 from Day 0) as indicated by the high OD values measured.
Faecal samples were collected and snap-frozen on Day -14, Day 0 and at termination.
Histopathology
The histopathology results are shown in Figures 66-71. As expected for this model, intra-individual and inter-individual variability was observed in terms of the presence/absence of arthritis or the severity of change present.
The nature of the pathology was as expected for this model, with extensive mixed chronic-active inflammation of the synovium and bursa extending to involve the peri-articular soft tissues (muscle, adipose tissue, dermal collagen). In the most severely affected joints there was articular cartilage degeneration and loss with intra-articular debris and inflammation and disruption of the joint and bone structure by fibrosis and inflammation.
The incidence of histopathological changes was: vehicle - 80% (16/20); Biotherapeutic #675 - 83% (20/24). Biotherapeutic #675 was effective for reducing histopathological damage observed in hind limb joints and reducing joint inflammation scores, cartilage damage scores, bone damage scores and total histopathology scores (see Figure 70), although statistical comparisons with the vehicle group could not be performed.
Summary
Increased clinical scores were observed from Day 28 after the first administration of type II collagen, as expected in this model of arthritis in DBA/1 mice. Biotherapeutic #675 was shown to be effective at treating arthritis in this model. Animals treated with biotherapeutic #675 were immunised at a different time when compared to the vehicle-treated group, which may explain the higher clinical scores observed. However, biotherapeutic #675 was effective for reducing pathological disease in the joints, as demonstrated in the histopathological analysis.
Proliferative recall responses to Collagen II were seen in splenocyte cultures from all experimental groups. Statistics were not performed for cultures of biotherapeutic #675, as these were established at a different time, but a reduction in collagen-specific response relative to the control was observed.
Most of the T cell cytokines tested showed detectable increases between Collagen Il-stimulated and media controls in the Vehicle-treated group. These increases were not as obvious in the biotherapeutic- treated group. This broadly supports the proliferative recall responses to Collagen II described above.
There was evidence of suppression of the Thl/Thl7 axis, which is the pathogenic response in this model and in human RA. Correlation of reduced levels of cytokines with reduced proliferation is suggestive of immune modulation. There was no evidence that this modulation resulted either from enhanced levels of Th2 associated IL-4 or with increases in the immune modulating cytokine, IL-10. Example 4 - Further analysis of the effect of bacterial inocula in the mouse model of house dust mite-induced asthma
The mice tested in Example 1 were subjected to further analyses to further characterise the effect of the compositions of the invention on the allergic asthma inflammatory response.
Materials and methods
Blood withdrawal and serum preparation on day 14. Blood samples of animals were collected via cardiac puncture. Serum was isolated from the blood sample by centrifugation for 5 min at 14000g and stored at -20 °C.
Organ removal on day 14. Collection of the left lung lobe in formalin for follow-on histological analysis. Collection of the right lung lobes (all remaining lobes) and removal of serum for snap freezing and follow-on analysis. Remaining BAL fluid was snap frozen for follow-on analysis.
Measurement of antibody levels in serum and BAL fluid
Total IgE and house-dust-mite (HDM) specific IgGl antibody production were measured in the BAL and serum by ELISA assay.
Isolation of lung and histological analysis
Left lung lobes were fixed in formalin followed by embedment in paraffin, sectioning, and staining with hematoxylin and eosin and PAS. Subsequent histological scoring was performed blinded as followed: Five random fields of view per sample were scored for inflammation (peribronchial infiltration and perivascular infiltration) and mucus production. Inflammatory infiltration was scored with the following grading system: 0 - normal
1 - mild inflammatory infiltrates
2 - moderate inflammatory infiltrates 3 - marked inflammatory infiltrates
4 - severe inflammatory infiltrates
5 - very severe inflammatory infiltrates
In each field of view, airways were measured in size and mucus cell numbers were quantified/ um.
Measurement of inflammatory mediators in lung tissue
Right lung lobes (all remaining lobes) isolated for quantification of inflammatory mediators were snap frozen for subsequent measurement of CCL11, IFN-gamma, IL-1 alpha, IL-1 beta, IL-4, IL-5, IL-9, IL-17A, CXCL1, CCL3, CXCL2 and CCL5 by commercially available multiplex assay (Merck- Millipore). Analysis was performed according to the manufacturer's instructions.
Results and analysis
The results of the experiments are shown in Figures 28-46.
In support of the findings described in Example 1, analysis of the cellular infiltrates in the lung tissue of mice treated with strain 675 showed a notable and statistically significant reduction in mean inflammation score (see Figures 32 and 34).
Antibody levels in the BAL fluid and serum were analysed (see Figures 28-31). No clear effect of the bacterial treatment on serum antibody levels was observed. This may reflect a failure in the experiment, because the spread of data and the error bars for each treatment are large, and the positive and negative controls do not appear to have behaved as would be expected. Also, the baseline serum antibody levels could have masked any changes.
Similarly, no clear effect of the bacterial treatment on cytokine levels in lung tissue was observed (see Figures 36-46). Again, this may reflect a failure in the experiment, because the spread of data and the error bars for each treatment are large, and the positive and negative controls do not appear to have behaved as would be expected. It is also possible that the mechanism of action involved influences earlier cytokine responses that were no longer detectable on day 4 post the final HDM airway challenge. Some care should be taken when interpreting the cytokine data in the current study, due to the variability in the levels detected. This variability could in part be explained by the fact that the lung tissue was separated for the different analyses, and thus one lung lobe might not have been fully representative or comparable to the same lobe in other mice due to patchy distribution of the inflammation.
Example 5 - Further analysis of the effect of bacterial inocula in the mouse model of severe neutrophilic asthma
The mice tested in Example 2 were subjected to further analyses to further characterise the effect of the compositions of the invention on the neutrophilic response associated with severe asthma.
Materials and methods
Organ removal on day 18. Collection of the left lung lobe in formalin for follow-on histological analysis. Collection of the right lung lobes (all remaining lobes) and removal of serum for snap freezing and follow-on analysis. Remaining BAL fluid was snap frozen for follow-on analysis.
Measurement of inflammatory mediators in lung tissue (follow-on analysis). Right lung lobes (all remaining lobes) isolated for quantification of inflammatory mediators were snap frozen for subsequent measurement of IFN-gamma, IL-1 alpha, IL-1 beta, CXCL1, CCL3, CXCL2, CCL5, IL- 17A, TNF-alpha, IL-17F, IL-23 and IL-33 by commercially available multiplex assay (Merck- Millipore). Analysis was performed according to the manufacturer's instructions.
Measurement of antibody levels in serum and BAL fluid (follow-on analysis). House-dust-mite (HDM) specific IgGl and IgG2a antibody production were measured in the BAL and serum by ELISA assay.
Isolation of lung and histological analysis (follow-on analysis). Left lung lobes were fixed in formalin followed by embedment in paraffin, sectioning, and staining with hematoxylin and eosin and PAS. Subsequent histological scoring was performed blinded as followed: Five random fields of view per sample were scored for inflammation (peribronchial infiltration and perivascular infiltration) and mucus production. Inflammatory infiltration was scored with the following grading system:
0 - normal
1 - mild inflammatory infiltrates
2 - moderate inflammatory infiltrates
3 - marked inflammatory infiltrates
4 - severe inflammatory infiltrates
5 - very severe inflammatory infiltrates
Results and analysis
The results of the experiments are shown in Figures 47-64.
Further analysis of antibody levels revealed that the efficacy of bacterial strain 675 was also reflected in reduced HDM-specific IgGl levels in the BAL fluid and serum (see Figures 47 and 49). Firm conclusions regarding an effect on IgG2a levels cannot be drawn. Overall, the data from the antibody analysis is suggestive of a reduction related to an overall reduced inflammatory response, as opposed to a selective effect on antibody isotype switching.
Histological analysis supported the differential cell counts from the BAL fluid, showing a reduced cellular infiltrate in mice treated with Strain 675 (see Figures 51-53).
In relation to cytokine levels, as for Example 4, the spread of data and the error bars for each treatment are large, and the positive and negative controls do not appear to have behaved as necessarily would be expected. It is also possible that the mechanism of action involves influencing earlier cytokine responses that were no longer detectable on day 4 post the final HDM airway challenge. Some care should be taken when interpreting the cytokine data in the current study, due to the variability in the levels detected. This variability could in part be explained by the fact that the lung tissue was separated for the different analyses, and thus one lung lobe might not have been fully representative or comparable to the same lobe in other mice due to patchy distribution of the inflammation. Despite this variability, a clear anti-inflammatory effect on cytokine levels for strain 675 was shown, and the positive control anti-IL-17 Ab generally behaved as expected.
With the above caveats, the data in Figures 56, 58, 59, 61 and 63 suggest that treatment with the bacterial strains of the invention may achieve a reduction in the levels of IL-lb, IFNy, RANTES, MIP- la and KC (the mouse orthologue of human IL-8), which may be indicative of a mechanism of action related to influences on chemokine release (and thus recruitment of cells) by stromal or innate immune cells. These cytokines are part of the Thl7 pathway. Taking this dataset together, a clear conclusion can be drawn that Strain 675 was highly effective at protecting mice against inflammation in this mouse model of severe neutrophilic asthma.
Example 6 - Efficacy of bacterial inocula in a mouse model of multiple sclerosis
Summary
Mice were administered with compositions comprising bacterial strains according to the invention and the mice were subsequently immunised with myelin oligodendrocyte glycoprotein to induce experimental autoimmune encephalomyelitis (EAE). EAE is the most commonly used experimental model for human multiple sclerosis. The compositions of the invention were found to have a striking effect on disease incidence and disease severity.
Strain
675: bacteria deposited under accession number NCIMB 42408
Study design
Groups:
1. Negative control group. Treatment with vehicle control (per oral). 3. Treatment with therapeutic bacteria inoculum strain 675 (per oral).
9. Positive control group. Treatment with Dexamethasone (i.p.).
10. Untreated Control Group.
Number of mice per group = 10
Days -14 to day 27: Daily administration of vehicle control per oral (Group 1).
Days -14 to day 27: Daily administration of therapeutic bacteria inoculum per oral (Group 4).
Days 0-28: administration of Dexamethasone (i.p.) three times a week (Group 9)
Day 0: MOG35-55 (myelin oligodendrocyte glycoprotein - 2mg/ml) and CFA (2mg/ml MTB) were mixed 1 :1 resulting in lmg/ml solutions. ΙΟΟμΙ of the peptide-CFA mixture was injected subcutaneously into each hind leg. Administration of pertussis toxin intraperitoneally (300ng).
Day 1 : Administration of pertussis toxin intraperitoneally (300ng).
Days 7-onwards: Measurement of disease incidence and weight three times a week.
Endpoints and analysis
Mice were analysed for disease incidence and disease severity three times a week. Scoring was performed blind. Disease severity was assessed using a clinical score ranging from 0 to 5, with 5 indicating a dead mouse (see clinical scoring system below).
Monitoring
On the indicated days mice were weighed and observed for disease activity score and disease incidence. Disease activity score observations:
0 - No obvious changes in motor function compared to non-immunized mice.
0.5 - Tip of tail is limp.
1.0 - Limp tail.
1.5 - Limp tail and hind leg inhibition.
2.0 - Limp tail and weakness of hind legs.
OR - There are obvious signs of head tilting when the walk is observed. The balance is poor. 2.5 - Limp tail and dragging of hind legs.
OR - There is a strong head tilt that causes the mouse to occasionally fall over.
3.0 - Limp tail and complete paralysis of hind legs.
3.5 - Limp tail and complete paralysis of hind legs.
In addition to: Mouse is moving around the cage, but when placed on its side, is unable to right itself.
Hind legs are together on one side of body.
4.0 - Limp tail, complete hind leg and partial front leg paralysis.
Mouse is minimally moving around the cage but appears alert and feeding
4.5 - Complete hind and partial front leg paralysis, no movement around the cage.
Mouse is immediately euthanized and removed from cage. 5.0 Mouse is euthanized due to severe paralysis.
When an animal has equal or greater disease activity score of 1, it is considered to have a positive disease incidence score.
Results
The results of the study are shown in Figures 72 and 73.
Disease induction in the negative control groups was successful with high scores shown by the vehicle control and the untreated control. The effect of treatment with strain 675 was striking and the mice treated with strain 675 exhibited notably reduced disease incidence and disease severity. Indeed, the reduction in disease incidence and disease severity was comparable to the positive control group. These data indicate the strain 675 may be useful for treating or preventing multiple sclerosis.
Example 7 - Stability testing
A composition described herein containing at least one bacterial strain described herein is stored in a sealed container at 25°C or 4°C and the container is placed in an atmosphere having 30%, 40%, 50%, 60%, 70%, 75%, 80%, 90% or 95% relative humidity. After 1 month, 2 months, 3 months, 6 months, 1 year, 1.5 years, 2 years, 2.5 years or 3 years, at least 50%, 60%, 70%, 80% or 90% of the bacterial strain shall remain as measured in colony forming units determined by standard protocols.
Sequences
SEQ ID NO:l (Bacteroides coprocola gene for 16S rRNA, partial sequence, strain: Mi l - AB200223)
1 agagtttgat cctggctcag gatgaacgct agctacaggc ttaacacatg caagtcgagg 61 ggcagcatga acttagcttg ctaagtttga tggcgaccgg cgcacgggtg agtaacacgt
121 atccaacctt ccgtttactc agggatagcc tttcgaaaga aagattaata cctgatagta 181 tggtgagatt gcatgatggc accattaaag atttattggt aaacgatggg gatgcgttcc 241 attaggtagt aggcggggta acggcccacc tagcctgcga tggatagggg ttctgagagg 301 aaggtccccc acattggaac tgagacacgg tccaaactcc tacgggaggc agcagtgagg 361 aatattggtc aatgggcgag agcctgaacc agccaagtag cgtgaaggat gaaggtccta
421 cggattgtaa acttctttta tacgggaata aagtttccta cgtgtaggat tttgtatgta 481 ccgtatgaat aagcatcggc taactccgtg ccagcagccg cggtaatacg gaggatgcga 541 gcgttatccg gatttattgg gtttaaaggg agcgcagacg ggagattaag tcagttgtga 601 aagtttgcgg ctcaaccgta aaattgcagt tgatactggt ttccttgagt gcagttgagg 661 caggcggaat tcgtggtgta gcggtgaaat gcttagatat cacgaagaac cccgattgcg
721 aaggcagctt gctaaactgt aactgacgtt catgctcgaa agtgtgggta tcaaacagga 781 ttagataccc tggtagtcca cacggtaaac gatggatact cgctgttggc gatatactgt 841 cagcggccaa gcgaaagcat taagtatccc acctggggag tacgccggca acggtgaaac 901 tcaaaggaat tgacgggggc ccgcacaagc ggaggaacat gtggtttaat tcgatgatac 961 gcgaggaacc ttacccgggc ttaaattgca gacgaattac gaggaaactt gtaagccgca
1021 aggcgtctgt gaaggtgctg catggttgtc gtcagctcgt gccgtgaggt gtcggcttaa 1081 gtgccataac gagcgcaacc ctcgtggtca gttactaaca ggttaagctg agggctctgg 1141 ccagactgcc atcgtaagat gtgaggaagg tggggatgac gtcaaatcag cacggccctt
1201 acgtccgggg ctacacacgt gttacaatgg gaggtacaga aggccgctac ccggcaacgg
1261 gatgccaatc cccaaaacct ctctcagttc ggactggagt ctgcaacccg actccacgaa
1321 gctggattcg ctagtaatcg cgcatcagcc acggcgcggt gaatacgttc ccgggccttg
1381 tacacaccgc ccgtcaagcc atgaaagccg ggggtacctg aagtgcgtaa ccgcaaggag
1441 cgccctaggg taaaaccggt aattggggct aagtctaaca aggtaaccaa g
SEQ ID NO:2 (Bacteroides coprocola gene for 16S rRNA, partial sequence, strain: Ml 6 - AB200224)
1 agagtttgat cctggctcag gatgaacgct agctacaggc ttaacacatg caagtcgagg
61 ggcagcatga acttagcttg ctaagtttga tggcgaccgg cgcacgggtg agtaacacgt
121 atccaacctt ccgtttactc agggatagcc tttcgaaaga aagattaata cctgatagta
181 tggtgagatt gcatgatggc accattaaag atttattggt aaacgatggg gatgcgttcc
241 attaggtagt aggcggggta acggcccacc tagcctgcga tggatagggg ttctgagagg
301 aaggtccccc acattggaac tgagacacgg tccaaactcc tacgggaggc agcagtgagg
361 aatattggtc aatgggcgag agcctgaacc agccaagtag cgtgaaggat gaaggtccta
421 cggattgtaa acttctttta tacgggaata aagtttccta cgtgtaggat tttgtatgta
481 ccgtatgaat aagcatcggc taactccgtg ccagcagccg cggtaatacg gaggatgcga
541 gcgttatccg gatttattgg gtttaaaggg agcgcagacg ggagattaag tcagttgtga
601 aagtttgcgg ctcaaccgta aaattgcagt tgatactggt ttccttgagt gcagttgagg
661 caggcggaat tcgtggtgta gcggtgaaat gcttagatat cacgaagaac cccgattgcg
721 aaggcagctt gctaaactgt aactgacgtt catgctcgaa agtgtgggta tcaaacagga
781 ttagataccc tggtagtcca cacggtaaac gatggatact cgctgttggc gatatactgt
841 cagcggccaa gcgaaagcat taagtatccc acctggggag tacgccggca acggtgaaac
901 tcaaaggaat tgacgggggc ccgcacaagc ggaggaacat gtggtttaat tcgatgatac
961 gcgaggaacc ttacccgggc ttaaattgca gacgaattac gaggaaactt gtaagccgca
1021 aggcgtctgt gaaggtgctg catggttgtc gtcagctcgt gccgtgaggt gtcggcttaa
1081 gtgccataac gagcgcaacc ctcgtggtca gttactaaca ggttaagctg agggctctgg
1141 ccagactgcc atcgtaagat gtgaggaagg tggggatgac gtcaaatcag cacggccctt
1201 acgtccgggg ctacacacgt gttacaatgg gaggtacaga aggccgctac ccggcaacgg
1261 gatgccaatc cccaaaacct ctctcagttc ggactggagt ctgcaacccg actccacgaa
1321 gctggattcg ctagtaatcg cgcatcagcc acggcgcggt gaatacgttc ccgggccttg
1381 tacacaccgc ccgtcaagcc atgaaagccg ggggtacctg aagtgcgtaa ccgcaaggag
1441 cgccctaggg taaaaccggt aattggggct aagtctaaca aggtaaccaa
SEQ ID NO:3 (Bacteroides coprocola gene for 16S rRNA, partial sequence, strain: Ml 58 - AB200225)
1 agagtttgat cctggctcag gatgaacgct agctacaggc ttaacacatg caagtcgagg
61 ggcagcatga acttagcttg ctaagtttga tggcgaccgg cgcacgggtg agtaacacgt
121 atccaacctt ccgtttactc agggatagcc tttcgaaaga aagattaata cctgatagta
181 tggtgagatt gcatgatagc accattaaag atttattggt aaacgatggg gatgcgttcc
241 attaggtagt aggcggggta acggcccacc tagcctncga tggatagggg ttctgagagg
301 aaggtccccc acattggaac tgagacacgg tccaaactcc tacgggaggc agcagtgagg
361 aatattggtc aatgggcgag agcctgaacc agccaagtag cgtgaaggat gaaggtccta
421 cggattgtaa acttctttta tacgggaata aagtatccta cgtgtaggat tttgtatgta
481 ccgtatgaat aagcatcggc taactccgtg ccagcagccg cggtaatacg gaggatgcga
541 gcgttatccg gatttattgg gtttaaaggg agcgcagacg ggagattaag tcagttgtga 601 aagtttgcgg ctcaaccgta aaattgcagt tgatactggt ttccttgagt gcagttgagg 661 caggcggaat tcgtggtgta gcggtgaaat gcttagatat cacgaagaac cccgattgcg 721 aaggcagctt gctaaactgt aactgacgtt catgctcgaa agtgtgggta tcaaacagga 781 ttagataccc tggtagtcca cacggtaaac gatggatact cgctgttggc gatatactgt 841 cagcggccaa gcgaaagcat taagtatccc acctggggag tacgccggca acggtgaaac 901 tcaaaggaat tgacgggggc ccgcacaagc ggaggaacat gtggtttaat tcgatgatac 961 gcgaggaacc ttacccgggc ttaaattgca gacgaattac gaggaaactt gtaagccgca 1021 aggcgtctgt gaaggtgctg catggttgtc gtcagctcgt gccgtgaggt gtcggcttaa 1081 gtgccataac gagcgcaacc ctcgtggtca gttactaaca ggttaagctg aggactctgg 1141 ccagactgcc atcgtaagat gtgaggaagg tggggatgac gtcaaatcag cacggccctt 1201 acgtccgggg ctacacacgt gttacaatgg gaggtacaga aggcagctac ccggcgacgg 1261 gatgccaatc cccaaaacct ctctcagttc ggactggagt ctgcaacccg actccacgaa 1321 gctggattcg ctagtaatcg cgcatcagcc acggcgcggt gaatacgttc ccgggccttg 1381 tacacaccgc ccgtcaagcc atgaaagccg ggggtacctg aagtgcgtaa ccgcaaggag 1441 cgccctaggg taaaaccggt aattggggct aagtcgtaac aaggtaacca a
SEQ ID NO:4 (consensus 16S rRNA sequence for Bacteroides coprocola strain 675)
GTCTGGCTCAKGATGAACGCTAGCTACAGGCTTAACACATGCAAGTCGAGGGGCAGCATGAACTTAGCTTGCTAAGT TTGATGGCGACCGGCGCACGGGTGAGTAACACGTATCCAACCTCCCGCTTACTCAGGAATAGCCTTTCGAAAGAAAG ATTAATGCCTGATGGTATCTTAAGCACACATGTAATTAAGATTAAAGATTTATCGGTAAGCGATGGGGATGCGTTCC ATTAGGTAGTAGGCGGGGTAACGGCCCACCTAGCCGACGATGGATAGGGGTTCTGAGAGGAAGGTCCCCCACATTGG AACTGAGACACGGTCCAAACTCCTACGGGAGGCAGCAGTGAGGAATATTGGTCAATGGGCGCGAGCCTGAACCAGCC AAGTAGCGTGAAGGATGAAGGTCCTATGGATTGTAAACTTCTTTTATACGGGAATAAAGTGGTCCACGTGTGGGCCT TTGCATGTACCGTATGAATAAGCATCGGCTAACTCCGTGCCAGCAGCCGCGGTAATACGGAGGATGCGAGCGTTATC CGGATTTATTGGGTTTAAAGGGAGCGCAGACGGGGGATTAAGTCAGTTGTGAAAGTTTGCGGCTCAACCGTAAAATT GCAGTTGATACTGGTTCCCTTGAGTGCAGTTGAGGCAGGCGGAATTCGTGGTGTAGCGGTGAAATGCATAGATATCA CGAAGAACCCCGATTGCGAAGGCAGCCTGCTAAGCTGTAACTGACGTTGAGGCTCGAAAGTGTGGGTATCAAACAGG ATTAGATACCCTGGTAGTCCACACGGTAAACGATGGATACTCGCTGTTGGCGATATACTGTCAGCGGCCAAGCGAAA GCATTAAGTATCCCACCTGGGGAGTACGCCGGCAACGGTGAAACTCAAAGGAATTGACGGGGGCCCGCACAAGCGGA GGAACATGTGGTTTAATTCGATGATACGCGAGGAACCTTACCCGGGCTTAAATTGCAGACGAATTACTTGGAAACAG GTAAGCCGCAAGGCGTCTGTGAAGGTGCTGCATGGTTGTCGTCAGCTCGTGCCGTGAGGTGTCGGCTTAAGTGCCAT AACGAGCGCAACCCTCGTGGCCAGTTACTAGCAGGTAACGCTGAGGACTCTGGCCAGACTGCCATCGTAAGATGCGA GGAAGGTGGGGATGACGTCAAATCAGCACGGCCCTTACGTCCGGGGCTACACACGTGTTACAATGGGAGGTACAGAA GGCAGCTACCCGGCGACGGGATGCCAATCTCCAAAGCCTCTCTCAGTTCGGACTGGAGTCTGCAACCCGACTCCACG AAGCTGGATTCGCTAGTAATCGCGCATCAGCCACGGCGCGGTGAATACGTTCCCGGGCCTTGTACACACCGCCCGTC AAGCCATGAAAGCCGGGAGTACCTGAAGTGCGTAACCGCAAGGAGCGCCCTAGGGTAAAACCGGTAATTGGGGCTAA GTCNTACGGGG
SEQ ID NO:5 {Bacteroides thetaiotaomicron gene for 16S rRNA, partial sequence - M58763)
1 cttntacaat gaagagtttg atcctggctc aggatnaacg ctagctacag gcttaacaca
61 tgcaagtcna ggggcagcat ttcagtttgc ttgcaaactg gagatggcga ccggcgcacg
121 ggtgagtaac acgtatccaa cctgccgata actcggggat agcctttcga aagaaagatt
181 aatacccnat ggtataatca gaccgcatng tcttrttatt aaagaatttc ggttatcgat
241 ggggatgcgt tccattaggc agttggtgag gtaacggctc acnnaacctt cgatggatag
301 gggttctgag aggaaggtcc cccacattgg aactgagaca cggtccaaac tcctacggga
361 ggcagcagtg aggaatattg gtcaatgggc gcaggcctga accagccaag tagcgtgaag
421 gatgactgcc ctatgggttg taaacttctt ttatatggga ataaagtttt ccacgtgtgg
481 aattttgtat gtaccatatg aataaggatc ggctaactcc gtgccagcag ccncgntnat
541 acggagnatc cgagcgttat ccggatttat tgggtttaaa gggagcgtag gtggacagtt 601 aagtcagttg tgaaagtttg cggctcaacc gtaaaattgc agttgatact ggctgtcttg
661 agtacagtag aggtgggcgg aattcgtggt gtagcggtga aatgcttaga tatcacgaag
721 aactccgatt gcgaaggcag ctcactggac tgcaactgac actgatgctc gaaagtgtgg
781 gtatcaaaca ggattagata ccctggtagt ccacacagta aacgatgaat actcgctgtt 841 tgcgatatac agtaagcggc caagcgaaag cattaagtat tccacctggg gagtacgccg
901 gcaacggtga aactcaaagg aattgacggg ggccngcaca agcggaggaa catgtggttt
961 aattcgatga tacgcgagga accttacccg ggcttaaatt gcatttgaat atattggaaa
1021 cagtatagcc gyaaggcaaa tgtgaaggtg ctgcatggtt gtcgtcagct cgtgccgtga
1081 ggtgtcggct taagtgccat aacgagcgca acccttatct ttagttacta acaggtcatg 1141 ctgaggactc tagagagact gccgtcgtaa gatgtgagga aggtggggat gacgtcaaat
1201 cagcacngcc cntacgtccg gggctacaca cgtgttacaa tggggggtac agaaggcagc
1261 tacctggtga caggatgcta atcccaaaag cctctctcag ttcggatcga agtctgcaac
1321 ccgacttcgt gaagctggat tcgctagtaa tcgcgcatca gccatggcgc ggtgaatacg
1381 ttcccgggcn ttgtacacac cgcccgtcaa gccatgaaag ccgggggtac ctgaagtacg 1441 taaccgcaag gagcgtccta gggtaaaact ggtaattggg gc
SEQ ID NO: 6 (strain 675 chromosome sequence) - see electronic sequence listing.
SEQ ID NO: 7 (strain 675 plasmid sequence) - see electronic sequence listing.
REFERENCES
1] Spor e/ al. (2011) Nat Rev Microbiol. 9(4):279-90.
2] Eckburg e/ a/. (2005) Science. 10;308(5728):1635-8.
3] Macpherson et al. (2001) Microbes Infect. 3(12):1021-35
4] Macpherson et al. (2002) Cell Mol Life Sci. 59(12):2088-96.
5] Mazmanian et al. (2005) Cell 15;122(1):107-18.
6] Frank et al. (2007) PNAS 104(34): 13780-5.
7] Scanlan e/ a/. (2006) J Clin Microbiol. 44(l l):3980-8.
8] Kang et al. (2010) Inflamm Bowel Dis. 16(12):2034-42.
9] Machiels et al. (2013) Gut. 63(8):1275-83.
WO 2013/050792
WO 03/046580
WO 2013/008039
WO 2014/167338
Goldin and Gorbach (2008) Clin Infect Dis. 46 Suppl 2:S96-100.
Azad et al. (2013) BMJ. 347:f6471.
Kitahara et al. (2005) Int J SystEvol Microbiol. 55(Pt 5):2143-7.
Masco et al. (2003) Systematic and Applied Microbiology, 26:557-563.
Srutkova et al. (2011) J. Microbiol. Methods, 87(l):10-6.
Ye et al. (2015) PLoS One. 10(l):e0117704.
Fabro e/ a/. (2015) Immunobiology. 220(l):124-35.
Yin et al. (2014) Immunogenetics. 66(3):215-8.
Cheluvappa et al. (2014) Clin Exp Immunol. 175(2):316-22.
Schieck et al. (2014) J Allergy Clin Immunol. 133(3):888-91.
Balato et al. (2014) J Eur Acad Dermatol Venereol. 28(8): 1016-24.
Monteleone et al. (2011) BMC Medicine. 2011, 9:122.
Fahy (2009) ProcAm Thorac Soc 6.256-259
Miossec and Kolls (2012) Nat Rev Drug Discov. 11(10):763-76.
Yang et al. (2014) Trends Pharmacol Sci. 35(10):493-500.
Koenders et al. (2006) J. Immunol. 176:6262-6269.
Amedei e/ a/. (2012) Int J Mol Sci. 13(10): 13438-60.
Shabgah e/ a/. (2014) Postepy. Dermatol. Alergol. 31(4):256-61.
Numasaki et al. (2003) Blood. 101:2620-2627.
Zhang et al. (2008) Biochem. Biophys. Res. Commun. 374: 533-537.
Karin (2006) Nature. 441: 431-436.
Faghih e/ a/. (2013). Iranian Journal of Immunology. 10(4): 193-204.
Numasaki et al. (2005) J. Immunol. 175: 6177-6189
Hammerich and Tacke (2014) Clin Exp Gastroenterol. 7:297-306.
Zhang (2015) Inflammation. Aug 23.
Sun et al. (2015) Cytokine. 74(l):76-80.
Mucientes et al. (2015) Br J Ophthalmol. 99(4):566-70.
Jawad e/ a/. (2013) Ocul Immunol Inflamm. 21(6):434-9.
Maya et al. (2014) J. Ophthalmology. 310329
Chi et al. (2007) J. Allergy and Clinical Immunology. 119(5): 1218-1224.
Chi et al. (2008) Investigative Ophthalmology &Visual Science . 49(7): 3058-3064.
Luger and Caspi (2008) Semin. Immunopathol. 30(2): 134-143.
Miyamoto-Shinohara et al. (2008) J. Gen. Appl. Microbiol., 54, 9-24.
Cryopreservation and Freeze-Drying Protocols, ed. by Day and McLellan, Humana Press.
Leslie et al. (1995) Appl. Environ. Microbiol. 61, 3592-3597.
Mitropoulou et al. (2013) JNutrMetab. (2013) 716861.
Kailasapathy et al. (2002) Curr Issues Intest Microbiol. 3(2):39-48.
Handbook of Pharmaceutical Excipients, 2nd Edition, (1994), Edited by A Wade and PJ Weller
Remington's Pharmaceutical Sciences, Mack Publishing Co. (A. R. Gennaro edit. 1985)
Handbook of Microbiological Media, Fourth Edition (2010) Ronald Atlas, CRC Press.
Maintaining Cultures for Biotechnology and Industry (1996) Jennie C. Hunter-Cevera, Academic Press Strobel (2009) Methods Mol Biol. 581:247-61.
"Creating Bacterial Glycerol Stocks for Long-term Storage of Plasmids" Addgene https://www.addgene.org/plasmid-protocols/create-glycerol-stock/
Gennaro (2000) Remington: The Science and Practice of Pharmacy. 20th edition, ISBN: 0683306472. Molecular Biology Techniques: An Intensive Laboratory Course, (Ream et al., eds., 1998, Academic Press). [59] Methods In Enzymology (S. Colowick and N. Kaplan, eds., Academic Press, Inc.)
[60] Handbook of Experimental Immunology, Vols. I-IV (D.M. Weir and C.C. Blackwell, eds, 1986, Blackwell Scientific Publications)
[61] Sambrook et al. (2001) Molecular Cloning: A Laboratory Manual, 3rd edition (Cold Spring Harbor Laboratory Press).
[62] Handbook of Surface and Colloidal Chemistry (Birdi, K.S. ed., CRC Press, 1997)
[63] Ausubel et al. (eds) (2002) Short protocols in molecular biology, 5th edition (Current Protocols).
[64] PCR (Introduction to Biotechniques Series), 2nd ed. (Newton & Graham eds., 1997, Springer Verlag)
[65] Current Protocols in Molecular Biology (F.M. Ausubel et al, eds., 1987) Supplement 30
[66] Smith & Waterman (1981) Adv. Appl. Math. 2: 482-489.
[67] Brand et al. (2007) Nature Protocols. 2(5): 1269-1275
[68] Jiao et al. (2014) Immunopathology and Infectious Diseases. 184(4): 1085-93.

Claims

1. A composition comprising a bacterial strain of the genus Bacteroides, for use in a method of treating or preventing a disease or condition mediated by IL-17 or the Thl7 pathway.
2. The composition of claim 1, wherein the composition is for use in a method of treating or preventing a disease or condition selected from the group consisting of asthma, such as allergic asthma or neutrophilic asthma; arthritis, such as rheumatoid arthritis, osteoarthritis, psoriatic arthritis, or juvenile idiopathic arthritis; multiple sclerosis; neuromyelitis optica (Devic's disease); ankylosing spondylitis; spondyloarthritis; psoriasis; systemic lupus erythematosus; inflammatory bowel disease, such as Crohn's disease or ulcerative colitis; celiac disease; chronic obstructive pulmonary disease (COPD); cancer, such as breast cancer, colon cancer, lung cancer or ovarian cancer; uveitis; scleritis; vasculitis; Behcet's disease; atherosclerosis; atopic dermatitis; emphysema; periodontitis; allergic rhinitis; and allograft rejection.
3. The composition of claim 2, wherein the composition is for use in in a method of treating or preventing asthma, such as neutrophilic asthma or allergic asthma.
4. The composition of claim 3, wherein the composition is for use in a method of reducing neutrophilia or eosinophilia in the treatment of asthma.
5. The composition of claim 2, wherein the composition is for use in in a method of treating or preventing rheumatoid arthritis.
6. The composition of claim 5, wherein the composition is for use in a method of reducing joint swelling in rheumatoid arthritis.
7. The composition of claim 2, wherein the composition is for use in in a method of treating or preventing multiple sclerosis.
8. The composition of claim 7, wherein the composition is for use in a method of reducing disease incidence or disease severity.
9. The composition of claim 2, wherein the composition is for use in a method of treating or preventing cancer, such as lung cancer, breast cancer or liver cancer.
10. The composition of claim 9, wherein the composition is for use in a method of reducing tumour size, reducing tumour growth, preventing metastasis or preventing angiogenesis.
11. The composition of claim 2, wherein the composition is for use in a method of treating or preventing uveitis.
12. The composition of claim 11, wherein the composition is for use in a method of reducing or preventing retinal damage in uveitis.
13. The composition of any preceding claim, wherein the composition is for use in a method of reducing IL-17 production or reducing Thl7 cell differentiation in the treatment or prevention of a disease or condition mediated by IL-17 or the Thl7 pathway.
14. The composition of any preceding claim, wherein the composition is for use in a patient with elevated IL-17 levels or Thl7 cells.
15. The composition of any preceding claim, wherein the bacterial strain is of Bacteroides coprocola.
16. The composition of any preceding claim, wherein the bacterial strain has a 16s rRNA sequence that is at least 95%, 96%, 97%, 98%, 99%, 99.5% or 99.9% identical to the 16s rRNA sequence of a bacterial strain of Bacteroides coprocola.
17. The composition of any of claims 1-15, wherein the bacterial strain has a 16s rRNA sequence that is at least 95%, 96%, 97%, 98%, 99%, 99.5% or 99.9% identical to SEQ ID NO:l, 2, 3 or 4.
18. The composition of claim 17, wherein the bacterial strain has a 16s rRNA sequence that is at least 95%, 96%, 97%, 98%, 99%, 99.5% or 99.9% identical to SEQ ID NO:4, or wherein the bacterial strain has the 16s rRNA sequence represented by SEQ ID NO:4.
19. The composition of any of claims 1-14, wherein the bacterial strain is of Bacteroides thetaiotaomicron.
20. The composition of any of claims 1-14, wherein the bacterial strain has a 16s rRNA sequence that is at least 95%, 96%, 97%, 98%, 99%, 99.5% or 99.9% identical to the 16s rRNA sequence of a bacterial strain of Bacteroides thetaiotaomicron.
21. The composition of any of claims 1-14, wherein the bacterial strain has a 16s rRNA sequence that is at least 95%, 96%, 97%, 98%, 99%, 99.5% or 99.9% identical to SEQ ID NO: 5.
22. The composition of claim 21, wherein the bacterial strain has the 16s rRNA sequence represented by SEQ ID NO: 5.
23. The composition of any of claims 1-14, wherein the bacterial strain is of Bacteroides fragilis.
24. The composition of claim 1, wherein the composition comprises a bacterial strain of the species Bacteroides coprocola, for use in a method of treating or preventing rheumatoid arthritis.
25. The composition of claim 1, wherein the composition comprises a bacterial strain of the species Bacteroides coprocola, for use in a method of treating or preventing asthma, such as neutrophilic asthma or allergic asthma.
26. The composition of claim 1, wherein the composition comprises a bacterial strain of the species Bacteroides coprocola, for use in a method of treating or preventing multiple sclerosis.
27. The composition of claim 1 , wherein the composition comprises a bacterial strain of the species Bacteroides coprocola, for use in a method of treating or preventing cancer.
28. The composition of claim 1, wherein the composition comprises a bacterial strain of the species Bacteroides coprocola, for use in a method of treating or preventing uveitis.
29. The composition of claim 1, wherein the composition comprises a bacterial strain of the species Bacteroides thetaiotaomicron, for use in a method of treating or preventing rheumatoid arthritis.
30. The composition of claim 1, wherein the composition comprises a bacterial strain of the species Bacteroides thetaiotaomicron, for use in a method of treating or preventing asthma, such as neutrophilic asthma or allergic asthma.
31. The composition of claim 1 , wherein the composition comprises a bacterial strain of the species Bacteroides thetaiotaomicron, for use in a method of treating or preventing multiple sclerosis.
32. The composition of claim 1, wherein the composition comprises a bacterial strain of the species Bacteroides thetaiotaomicron, for use in a method of treating or preventing cancer.
33. The composition of claim 1 , wherein the composition comprises a bacterial strain of the species Bacteroides thetaiotaomicron, for use in a method of treating or preventing uveitis.
34. The composition of claim 1 , wherein the composition comprises a bacterial strain of the species Bacteroides fragilis, for use in a method of treating or preventing rheumatoid arthritis.
35. The composition of claim 1 , wherein the composition comprises a bacterial strain of the species Bacteroides fragilis, for use in a method of treating or preventing asthma, such as neutrophilic asthma or allergic asthma.
36. The composition of claim 1 , wherein the composition comprises a bacterial strain of the species Bacteroides fragilis, for use in a method of treating or preventing multiple sclerosis.
37. The composition of claim 1, wherein the composition comprises abacterial strain of the species Bacteroides fragilis, for use in a method of treating or preventing cancer.
38. The composition of claim 1 , wherein the composition comprises a bacterial strain of the species Bacteroides fragilis, for use in a method of treating or preventing uveitis.
39. The composition of any preceding claim, wherein the composition is for oral administration.
40. The composition of any preceding claim, wherein the composition comprises one or more pharmaceutically acceptable excipients or carriers.
41. The composition of any preceding claim, wherein the bacterial strain is lyophilised.
42. A food product comprising the composition of any preceding claim, for the use of any preceding claim.
43. A vaccine composition comprising the composition of any preceding claim, for the use of any preceding claim.
44. A method of treating or preventing a disease or condition mediated by IL-17 or the Thl7 pathway, comprising administering a composition comprising a bacterial strain of the genus
Bacteroides to a patient in need thereof.
45. A cell of the Bacteroides coprocola strain deposited under accession number 42408, or a derivative thereof.
46. A composition comprising the cell of claim 45.
47. The composition of claim 46, comprising a pharmaceutically acceptable carrier or excipient.
48. A biologically pure culture of the Bacteroides coprocola strain deposited under accession number 42408, or a derivative thereof.
49. A cell of the Bacteroides coprocola strain deposited under accession number 42408, or a derivative thereof, for use in therapy.
50. The cell of claim 49, wherein the cell is for use in a method defined in any of claims 1-14.
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Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9999641B2 (en) 2016-06-14 2018-06-19 Vedanta Biosciences, Inc. Treatment of clostridium difficile infection
WO2020074569A1 (en) * 2018-10-09 2020-04-16 4D Pharma Research Limited Compositions comprising bacterial strains
KR20200081425A (en) * 2017-10-31 2020-07-07 인스티튜트 구스타브 루시 Bacterial and cellular compositions for the treatment of colorectal cancer, and methods for assessing the prognosis of patients with the same
EP3839039A1 (en) 2019-12-16 2021-06-23 4D Pharma Research Limited Providing bacterial biomass with improved storage stability
WO2021123379A1 (en) 2019-12-20 2021-06-24 4D Pharma León, S.L.U. Lyophilisation process
US11810650B2 (en) 2017-04-03 2023-11-07 Gusto Global, Llc Rational design of microbial-based biotherapeutics
US12161680B2 (en) 2018-08-17 2024-12-10 Vedanta Biosciences, Inc. Methods of decreasing dysbiosis and restoring a microbiome
US12390498B2 (en) 2016-06-14 2025-08-19 Vedanta Biosciences, Inc. Treatment of clostridium difficile infection

Families Citing this family (32)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB201112091D0 (en) 2011-07-14 2011-08-31 Gt Biolog Ltd Bacterial strains isolated from pigs
GB201117313D0 (en) 2011-10-07 2011-11-16 Gt Biolog Ltd Bacterium for use in medicine
GB201306536D0 (en) 2013-04-10 2013-05-22 Gt Biolog Ltd Polypeptide and immune modulation
PL3065748T3 (en) 2014-12-23 2018-07-31 4D Pharma Research Limited A bacteroides thetaiotaomicron strain and its use in reducing inflammation
KR20170091157A (en) 2014-12-23 2017-08-08 4디 파마 리서치 리미티드 Pirin polypeptide and immune modulation
MA41060B1 (en) 2015-06-15 2019-11-29 4D Pharma Res Ltd Compositions comprising bacterial strains
MA41010B1 (en) 2015-06-15 2020-01-31 4D Pharma Res Ltd Compositions comprising bacterial strains
SI3240554T1 (en) 2015-06-15 2019-12-31 4D Pharma Research Limited, Blautia stercosis and wexlerae for use in the treatment of inflammatory and autoimmune diseases
EA201890050A1 (en) 2015-06-15 2018-06-29 4Д Фарма Рисёрч Лимитед COMPOSITIONS CONTAINING BACTERIAL STRAINS
MD3650033T2 (en) 2015-06-15 2022-08-31 4D Pharma Res Ltd Compositions comprising bacterial strains
GB201520497D0 (en) 2015-11-20 2016-01-06 4D Pharma Res Ltd Compositions comprising bacterial strains
AU2016357554B2 (en) 2015-11-20 2019-04-04 Cj Bioscience, Inc. Compositions comprising bacterial strains
GB201520638D0 (en) 2015-11-23 2016-01-06 4D Pharma Res Ltd Compositions comprising bacterial strains
GB201520631D0 (en) 2015-11-23 2016-01-06 4D Pharma Res Ltd Compositions comprising bacterial strains
GB201612191D0 (en) 2016-07-13 2016-08-24 4D Pharma Plc Compositions comprising bacterial strains
EP3520801A1 (en) 2016-03-04 2019-08-07 4D Pharma Plc Compositions comprising bacterial blautia strains for treating visceral hypersensitivity
US11786562B2 (en) * 2016-04-19 2023-10-17 Genome Research Limited Bacteriotherapy
TW201821093A (en) 2016-07-13 2018-06-16 英商4D製藥有限公司 Composition comprising a bacterial strain
GB201621123D0 (en) 2016-12-12 2017-01-25 4D Pharma Plc Compositions comprising bacterial strains
AU2017376780B2 (en) 2016-12-15 2024-12-12 Novome Biotechnologies, Inc. Compositions and methods for modulating growth of a genetically modified gut bacterial cell
JP7212945B2 (en) 2017-05-22 2023-01-26 フォーディー ファーマ リサーチ リミテッド Compositions containing bacterial strains
TW201907931A (en) 2017-05-24 2019-03-01 英商4D製藥研究有限公司 Composition comprising a bacterial strain
MD3804737T2 (en) 2017-06-14 2022-10-31 4D Pharma Res Limited Compositions comprising bacterial strains
WO2018229188A1 (en) 2017-06-14 2018-12-20 4D Pharma Research Limited Compositions comprising bacterial strains
CN115813955A (en) 2017-06-14 2023-03-21 4D制药研究有限公司 Compositions comprising bacterial strains
WO2019115759A1 (en) * 2017-12-14 2019-06-20 Københavns Universitet Bacterial compositions and the use thereof for the treatment or prevention of asthma or other wheezing disorders or allergy in a child
CA3103064A1 (en) * 2018-06-19 2019-12-26 4D Pharma Research Ltd Dosage form comprising a live biotherapeutic product
US12144834B2 (en) 2018-09-13 2024-11-19 Xbiome Inc. Methods and compositions for treating gastrointestinal and inflammatory disorders
US12421518B2 (en) 2018-12-10 2025-09-23 Tenza, Inc. Methods and compositions for treating hyperoxaluria
EP4054624A4 (en) * 2019-11-05 2023-12-27 Beth Israel Deaconess Medical Center, Inc. MYCOBACTERIAL COMPOSITIONS AND BIOMARKERS FOR USE IN THE TREATMENT AND MONITORING THERAPEUTIC RESPONSIVENESS
WO2021236935A1 (en) 2020-05-22 2021-11-25 Qx Therapeutics Inc. Compositions and methods for treating lung injuries associated with viral infections
EP4306118A4 (en) * 2021-03-08 2025-04-23 Juntendo Educational Foundation COMPOSITION AND PEDESTRICULANT WITH ANTI-INFLAMMATORY EFFECT

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2011153226A2 (en) * 2010-06-01 2011-12-08 Moore Research Enterprises Llc Cellular constituents from bacteroides, compositions thereof, and therapeutic methods employing bacteroides or cellular constituents thereof
CN103156888A (en) * 2013-03-18 2013-06-19 广州知光生物科技有限公司 Application of bacteroides fragilis in preparation of composition for treating inflammatory bowel diseases
US20140335131A1 (en) * 2013-05-10 2014-11-13 California Institute Of Technology Probiotic prevention and treatment of colon cancer
US9011834B1 (en) * 2013-02-04 2015-04-21 Seres Health, Inc. Compositions and methods
CN104546942A (en) * 2014-09-30 2015-04-29 深圳华大基因科技有限公司 Application of bacteroides dorei in treating or preventing rheumatoid arthritis or related diseases thereof
CN104546935A (en) * 2014-09-30 2015-04-29 深圳华大基因科技有限公司 Application of bacteroides thetaiotaomicron in treating or preventing rheumatoid arthritis or related diseases thereof

Family Cites Families (354)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
NL154598B (en) 1970-11-10 1977-09-15 Organon Nv PROCEDURE FOR DETERMINING AND DETERMINING LOW MOLECULAR COMPOUNDS AND PROTEINS THAT CAN SPECIFICALLY BIND THESE COMPOUNDS AND TEST PACKAGING.
US3817837A (en) 1971-05-14 1974-06-18 Syva Corp Enzyme amplification assay
US3939350A (en) 1974-04-29 1976-02-17 Board Of Trustees Of The Leland Stanford Junior University Fluorescent immunoassay employing total reflection for activation
US3996345A (en) 1974-08-12 1976-12-07 Syva Company Fluorescence quenching with immunological pairs in immunoassays
US4275149A (en) 1978-11-24 1981-06-23 Syva Company Macromolecular environment control in specific receptor assays
US4277437A (en) 1978-04-05 1981-07-07 Syva Company Kit for carrying out chemically induced fluorescence immunoassay
US4366241A (en) 1980-08-07 1982-12-28 Syva Company Concentrating zone method in heterogeneous immunoassays
NL8300698A (en) 1983-02-24 1984-09-17 Univ Leiden METHOD FOR BUILDING FOREIGN DNA INTO THE NAME OF DIABIC LOBAL PLANTS; AGROBACTERIUM TUMEFACIENS BACTERIA AND METHOD FOR PRODUCTION THEREOF; PLANTS AND PLANT CELLS WITH CHANGED GENETIC PROPERTIES; PROCESS FOR PREPARING CHEMICAL AND / OR PHARMACEUTICAL PRODUCTS.
US4816567A (en) 1983-04-08 1989-03-28 Genentech, Inc. Recombinant immunoglobin preparations
US4683202A (en) 1985-03-28 1987-07-28 Cetus Corporation Process for amplifying nucleic acid sequences
DK122686D0 (en) 1986-03-17 1986-03-17 Novo Industri As PREPARATION OF PROTEINS
FR2613624B1 (en) 1987-04-10 1990-11-23 Roussy Inst Gustave ORAL ADMINISTRATIVE PHARMACEUTICAL COMPOSITION FOR REDUCING THE EFFECTS OF B-LACTAMINES
DE68928665T2 (en) 1988-08-02 1998-11-12 Gastro Services Pty Ltd TREATING GASTRO-INTESTINAL DISEASES
US5443826A (en) 1988-08-02 1995-08-22 Borody; Thomas J. Treatment of gastro-intestinal disorders with a fecal composition or a composition of bacteroides and E. Coli
KR100225087B1 (en) 1990-03-23 1999-10-15 한스 발터라벤 The expression of phytase in plants
CA2082279C (en) 1990-05-09 2007-09-04 Grethe Rasmussen Cellulase preparation comprising an endoglucanase enzyme
GB9107305D0 (en) 1991-04-08 1991-05-22 Unilever Plc Probiotic
US5443951A (en) 1992-07-20 1995-08-22 Kabushiki Kaisha Yakult Honsha Species-specific oligonucleotides for bifidobacteria and a method of detection using the same
ATE219143T1 (en) 1992-12-10 2002-06-15 Dsm Nv PRODUCTION OF HETEROLOGUE PROTEINS IN FILAMENTOUS FUNGI
US5741665A (en) 1994-05-10 1998-04-21 University Of Hawaii Light-regulated promoters for production of heterologous proteins in filamentous fungi
US5599795A (en) 1994-08-19 1997-02-04 Mccann; Michael Method for treatment of idiopathic inflammatory bowel disease (IIBD)
AUPM823094A0 (en) 1994-09-16 1994-10-13 Goodman Fielder Limited Probiotic compositions
AUPM864894A0 (en) 1994-10-07 1994-11-03 Borody, Thomas Julius Treatment of bowel-dependent neurological disorders
RU2078815C1 (en) 1995-01-17 1997-05-10 Московский научно-исследовательский институт эпидемиологии и микробиологии им.Г.Н.Габричевского Strain of bacterium bifidobacterium breve used for preparing the bacterial curative-prophylaxis bifido-containing preparations
JPH08259450A (en) 1995-03-17 1996-10-08 Nichinichi Seiyaku Kk Interferon production enhancer
US6861053B1 (en) 1999-08-11 2005-03-01 Cedars-Sinai Medical Center Methods of diagnosing or treating irritable bowel syndrome and other disorders caused by small intestinal bacterial overgrowth
AUPN698495A0 (en) 1995-12-06 1996-01-04 Pharma Pacific Pty Ltd Improved therapeutic formulation and method
SE508045C2 (en) 1996-02-26 1998-08-17 Arla Ekonomisk Foerening Adhesion inhibitors, preparations containing the same and process for their preparation
KR20000064729A (en) 1996-03-20 2000-11-06 번스 필프 앤드 컴파니 리미티드 Alteration of microbial populations in the gastrointestinal tract
AUPN881396A0 (en) 1996-03-20 1996-04-18 Arnott's Biscuits Limited Enhancement of microbial colonization of the gastrointestinal tract
CN1120235C (en) 1996-03-27 2003-09-03 诺沃奇梅兹有限公司 Alkaline protease deficient filamentous fungi
US6033864A (en) 1996-04-12 2000-03-07 The Regents Of The University Of California Diagnosis, prevention and treatment of ulcerative colitis, and clinical subtypes thereof, using microbial UC pANCA antigens
AU6773598A (en) 1997-03-26 1998-10-20 Institut Pasteur Treatment of gastrointestinal disease with ppar modulators
SE511524C2 (en) 1997-06-02 1999-10-11 Essum Ab Lactobacillus casei rhamnosus strain and pharmaceutical preparation for the control of pathogenic intestinal bacteria
US5925657A (en) 1997-06-18 1999-07-20 The General Hospital Corporation Use of PPARγ agonists for inhibition of inflammatory cytokine production
AUPO758297A0 (en) 1997-06-27 1997-07-24 Rowe, James Baber Control of acidic gut syndrome
US5951977A (en) 1997-10-14 1999-09-14 The United States Of America, As Represented By The Secretary Of Agriculture Competitive exclusion culture for swine
IT1298918B1 (en) 1998-02-20 2000-02-07 Mendes Srl USE OF ARGININE DEIMINASE BACTERIA TO INDUCE APOPTOSIS AND / OR REDUCE AN INFLAMMATORY REACTION AND PHARMACEUTICAL COMPOSITIONS
DE19826928A1 (en) 1998-06-17 1999-12-23 Novartis Consumer Health Gmbh Medicines containing viable anaerobic bacteria that inhibit sulfate reduction by sulfate-reducing bacteria
ID29150A (en) 1999-01-15 2001-08-02 Entpr Ireland Cs USE OF LACTOBACILLUS SALIVARIUS
US7090973B1 (en) 1999-04-09 2006-08-15 Oscient Pharmaceuticals Corporation Nucleic acid sequences relating to Bacteroides fragilis for diagnostics and therapeutics
DK1206457T3 (en) 1999-08-27 2004-02-16 Lilly Co Eli Biaryl-oxa (thia) zole derivatives and their use as modulators PPAPs
KR20020077421A (en) 2000-02-08 2002-10-11 에프. 호프만-라 로슈 아게 Use of acid-stable subtilisin proteases in animal feed
FR2808689B1 (en) 2000-05-11 2004-09-03 Agronomique Inst Nat Rech USE OF HYDROGENOTROPHIC ACETOGENIC STRAINS FOR THE PREVENTION OR TREATMENT OF DIGESTIVE DISORDERS
US20020013270A1 (en) 2000-06-05 2002-01-31 Bolte Ellen R. Method for treating a mental disorder
AUPQ899700A0 (en) 2000-07-25 2000-08-17 Borody, Thomas Julius Probiotic recolonisation therapy
EP1414853A2 (en) 2000-11-27 2004-05-06 Washington University Method for studying the effects of commensal microflora on mammalian intestine and treatments of gastrointestinal-associated disease based thereon
DE10101793A1 (en) 2001-01-17 2002-08-01 Manfred Nilius Use of SLPI to treat inflammatory bowel disease
EP1227152A1 (en) 2001-01-30 2002-07-31 Société des Produits Nestlé S.A. Bacterial strain and genome of bifidobacterium
KR100437497B1 (en) 2001-03-07 2004-06-25 주식회사 프로바이오닉 Acid-tolerant Lactobacillus reuteri Probio-16 suppressing the growth of pathogenic microorganisms and rotavirus, and Probiotics containing the same
EP1243273A1 (en) 2001-03-22 2002-09-25 Societe Des Produits Nestle S.A. Composition comprising a prebiotic for decreasing infammatory process and abnormal activation of non-specific immune parameters
ATE463505T1 (en) 2001-04-20 2010-04-15 Inst Systems Biology TOLL-LIKE RECEPTOR 5 LIGANDS AND METHODS OF USE
EP1260227A1 (en) 2001-05-23 2002-11-27 Societe Des Produits Nestle S.A. Lipoteichoic acid from lactic acid bacteria and its use to modulate immune responses mediated by gram-negative bacteria, potential pathogenic gram-positive bacteria
US20030092163A1 (en) 2001-07-26 2003-05-15 Collins John Kevin Probiotic bifidobacterium strains
MXPA04001999A (en) 2001-09-05 2004-07-16 Vsl Pharmaceuticals Inc Lactic acid bacteria comprising unmethylated cytosine-guanine dinucleotides for use in therapy.
GB0127916D0 (en) 2001-11-21 2002-01-16 Rowett Res Inst Method
EP1529054A4 (en) 2001-11-27 2005-12-28 Univ Washington THERAPEUTIC PROTEIN AND TREATMENTS
EP1581119B1 (en) 2001-12-17 2013-01-30 Corixa Corporation Compositions and methods for the therapy and diagnosis of inflammatory bowel disease
US7101565B2 (en) 2002-02-05 2006-09-05 Corpak Medsystems, Inc. Probiotic/prebiotic composition and delivery method
DE10206995B4 (en) 2002-02-19 2014-01-02 Orthomol Pharmazeutische Vertriebs Gmbh Micronutrient combination product with pro- and prebiotics
JP2003261453A (en) 2002-03-11 2003-09-16 Nippon Berumu Kk Antitumor agent and radiation-protecting agent consisting of e. faecalis
DE60322570D1 (en) 2002-06-28 2008-09-11 Puleva Biotech Sa PROBIOTIC STRAINS, METHOD FOR THEIR SELECTION, THESE INGREDIENT COMPOSITIONS AND THEIR USE
US20040005304A1 (en) 2002-07-08 2004-01-08 Mak Wood, Inc. Novel compositions and methods for treating neurological disorders and associated gastrointestinal conditions
GB0307026D0 (en) 2003-03-27 2003-04-30 Rowett Res Inst Bacterial supplement
EP1481681A1 (en) 2003-05-30 2004-12-01 Claudio De Simone Lactic acid bacteria combination and compositions thereof
GB0316915D0 (en) 2003-07-18 2003-08-20 Glaxo Group Ltd Compounds
AU2003247193A1 (en) 2003-07-23 2005-02-04 M.D.Lab Corp. Acid tolerant probiotic lactobacillus plantarum probio-38 that can suppress the growth of pathogenic microorganism and tge coronavirus
US7485325B2 (en) 2003-08-06 2009-02-03 Gayle Dorothy Swain Animal food supplement compositions and methods of use
JP4683881B2 (en) 2003-08-27 2011-05-18 有限会社アーク技研 Antitumor active
US8192733B2 (en) 2003-08-29 2012-06-05 Cobb & Associates Probiotic composition useful for dietary augmentation and/or combating disease states and adverse physiological conditions
US20050163764A1 (en) 2003-09-22 2005-07-28 Yale University Treatment with agonists of toll-like receptors
GB0323039D0 (en) 2003-10-01 2003-11-05 Danisco Method
JP4740866B2 (en) 2003-10-24 2011-08-03 ナムローゼ フェンノートシャップ ニュートリシア Symbiotic composition for infants
US20050239706A1 (en) 2003-10-31 2005-10-27 Washington University In St. Louis Modulation of fiaf and the gastrointestinal microbiota as a means to control energy storage in a subject
CA2550106A1 (en) 2003-12-17 2005-06-30 N.V. Nutricia Lactic acid producing bacteria and lung function
ES2235642B2 (en) 2003-12-18 2006-03-01 Gat Formulation Gmbh CONTINUOUS MULTI-MICROENCAPSULATION PROCESS FOR THE IMPROVEMENT OF STABILITY AND STORAGE OF BIOLOGICALLY ACTIVE INGREDIENTS.
CA2557800A1 (en) 2004-03-22 2005-10-06 Yossef Raviv Cellular and viral inactivation
WO2005107381A2 (en) 2004-05-07 2005-11-17 Hans-Gustaf Ljunggren Use of flagellin as an adjuvant for vaccine
PE20060426A1 (en) 2004-06-02 2006-06-28 Schering Corp TARTARIC ACID DERIVATIVES AS INHIBITORS OF MMPs, ADAMs, TACE AND TNF-alpha
US7638513B2 (en) 2004-06-02 2009-12-29 Schering Corporation Compounds for the treatment of inflammatory disorders
NZ586338A (en) 2004-06-07 2012-02-24 Qu Biolog Inc Bacterial compositions for the treatment of cancer
PT1629850E (en) 2004-08-24 2007-08-14 Nutricia Nv Nutritional composition comprising indigestible oligosaccharides
US20060062773A1 (en) 2004-09-21 2006-03-23 The Procter & Gamble Company Compositions for maintaining and restoring normal gastrointestinal flora
KR100468522B1 (en) 2004-10-12 2005-01-31 주식회사 프로바이오닉 2 -63new acid tolerant probiotic enterococcus faecium probio-63 that can suppress the growth of corona virus and porcine circovirus type 2
US20060115465A1 (en) 2004-10-29 2006-06-01 Macfarlane George Treatment of gastrointestinal disorders
ITMI20042189A1 (en) 2004-11-16 2005-02-16 Anidral Srl COMPOSITION BASED ON PROBIOTIC BACTERIA AND ITS USE IN THE PREVENTION OF E-OR IN THE TREATMENT OF PATHOLOGIES AND-OR RESPIRATORY INFECTIONS AND IN THE IMPROVEMENT OF INTESTINAL FUNCTIONALITY
PL1855550T3 (en) 2005-02-28 2012-03-30 Nutricia Nv Nutritional composition with probiotics
WO2006102536A2 (en) 2005-03-23 2006-09-28 University Of Southern California Treatment of disease conditions through modulation of hydrogen sulfide produced by small intestinal bacterial overgrowth
EP1861490A4 (en) 2005-03-23 2010-11-17 Univ St Louis USE OF ARRAYS TO MODULATE NUTRIENT CAPTURE FUNCTIONS BY THE GASTROINTESTINAL MICROBIOTE
JP2006265212A (en) 2005-03-25 2006-10-05 Institute Of Physical & Chemical Research IL-21 production inducer
US20100233312A9 (en) 2005-04-11 2010-09-16 The Procter & Gamble Company Compositions comprising probiotic and sweetener components
EP1714660A1 (en) 2005-04-21 2006-10-25 N.V. Nutricia Uronic acid and probiotics
WO2006114778A1 (en) 2005-04-26 2006-11-02 Teagasc- The Agriculture And Food Development Authority Probiotic composition suitable for animals
PL2161336T5 (en) 2005-05-09 2017-10-31 Ono Pharmaceutical Co Human monoclonal antibodies to programmed death 1(PD-1) and methods for treating cancer using anti-PD-1 antibodies alone or in combination with other immunotherapeutics
US7572474B2 (en) 2005-06-01 2009-08-11 Mead Johnson Nutrition Company Method for simulating the functional attributes of human milk oligosaccharides in formula-fed infants
US8075934B2 (en) 2008-10-24 2011-12-13 Mead Johnson Nutrition Company Nutritional composition with improved digestibility
JP2007084533A (en) 2005-08-24 2007-04-05 Prima Meat Packers Ltd Immune response modulating composition and food containing the composition as an active ingredient
US7625704B2 (en) 2005-08-31 2009-12-01 Fred Hutchinson Cancer Research Center Methods and compositions for identifying bacteria associated with bacteria vaginosis
SI1933869T1 (en) 2005-09-01 2010-02-26 Schering Corp Use of il-23 and il-17 antagonists to treat autoimmune ocular inflammatory disease
US20090028840A1 (en) 2005-09-23 2009-01-29 Gwangju Institute Of Sciecne And Technology Compositions For Preventing Or Treating Arthritis Comprising Lactic Acid Bacteria and Collangen As Active Ingredients
EP1776877A1 (en) 2005-10-21 2007-04-25 N.V. Nutricia Method for stimulating the intestinal flora
EP1940243B1 (en) 2005-10-24 2011-08-03 Nestec S.A. Dietary fiber formulation and method of administration
JP2007116991A (en) 2005-10-28 2007-05-17 Eternal Light General Institute Inc Functional food
US7767420B2 (en) 2005-11-03 2010-08-03 Momenta Pharmaceuticals, Inc. Heparan sulfate glycosaminoglycan lyase and uses thereof
US7553864B2 (en) 2005-12-01 2009-06-30 Schering Corporation Compounds for the treatment of inflammatory disorders and microbial diseases
WO2007098371A2 (en) 2006-02-16 2007-08-30 Wayne State University Use of flagellin to prevent and treat gram negative bacterial infection
US20080260906A1 (en) 2006-03-17 2008-10-23 Marko Stojanovic Compositions comprising probiotic and sweetener components
JP5031249B2 (en) 2006-03-22 2012-09-19 学校法人北里研究所 Bacteria-containing composition having anti-inflammatory effect
WO2007136719A2 (en) 2006-05-18 2007-11-29 Biobalance Llc Biotherapeutic compositions comprising probiotic escherichia coli and uses thereof
WO2007140230A2 (en) 2006-05-26 2007-12-06 Nestec S.A. Methods of use and nutritional compositions of touchi extract
WO2007140613A1 (en) 2006-06-06 2007-12-13 Mcgill University Fermented milk product and use thereof
WO2007147019A2 (en) * 2006-06-13 2007-12-21 Zymogenetics, Inc. Il-17 and il-23 antagonists and methods of using the same
TW200819540A (en) 2006-07-11 2008-05-01 Genelux Corp Methods and compositions for detection of microorganisms and cells and treatment of diseases and disorders
US8691213B2 (en) 2006-08-04 2014-04-08 SHS International Protein free formula
WO2008031438A2 (en) 2006-09-13 2008-03-20 Region Hovedstaden V/Gentofte Hospital Treatment of asthma, eczema and/or allergy using non-pathogenic organisms
US20080069861A1 (en) 2006-09-19 2008-03-20 National Starch And Chemical Investment Holding Corporation Probiotic/Non-Probiotic Combinations
RU2420538C2 (en) 2006-10-27 2011-06-10 Пфайзер Продактс Инк. Hard capsules made from hydroxypropyl methylcellulose and method of producing said capsules
WO2008053444A2 (en) 2006-11-01 2008-05-08 The Procter & Gamble Company Treating a respiratory condition with bifidobacterium
EP1920782A1 (en) 2006-11-10 2008-05-14 Glycotope Gmbh Carboyhdrate specific cellular immunity inducing microorganisms and fractions thereof
WO2008064489A1 (en) 2006-12-01 2008-06-05 Mcmaster University Probiotics to inhibit inflammation
WO2008076696A2 (en) 2006-12-18 2008-06-26 Washington University In St. Louis The gut microbiome as a biomarker and therapeutic target for treating obesity or an obesity related disorder
DE102006062250A1 (en) 2006-12-22 2008-06-26 Roland Saur-Brosch Use of a composition of minerals and / or vitamins and optionally acetogenic and / or butyrogenic bacteria for oral or rectal administration for the treatment and prevention of abdominal discomfort
WO2008083157A2 (en) 2006-12-29 2008-07-10 Washington University In St. Louis Altering pgc-1alapha, ampk, fiaf, or the gastrointestinal microbiota as a means to modulate body fat and/or weight loss in a subject
JP2008195635A (en) 2007-02-09 2008-08-28 Crossfield Bio Inc Lactic acid bacteria preparation for horse
MX2009008875A (en) 2007-02-28 2009-08-28 Mead Johnson Nutrition Co Product containing inactivated probiotic for children or infants.
RU2466185C2 (en) 2007-03-28 2012-11-10 Элиментари Хелт Лимитед PROBIOTIC STRAIN Bifidobacterium longum, PROBIOTIC COMPOSITION AND USE OF STRAIN Bifidobacterium longum
RU2473681C2 (en) 2007-03-28 2013-01-27 Элиментари Хелт Лимитед PROBIOTIC STRAIN OF Bifidobacterium longum, COMPOSITION CONTAINING SUCH STRAIN AND USE THEREOF
US20080299098A1 (en) 2007-04-24 2008-12-04 Chea-Yun Se Broad-Spectrum Antibacterial and Antifungal Activity of Lactobacillus Johnsonii D115
EP1997499A1 (en) 2007-05-31 2008-12-03 Puleva Biotech, S.A. Mammalian milk microorganisms, compositions containing them and their use for the treatment of mastitis
EP1997906A1 (en) 2007-06-01 2008-12-03 Friesland Brands B.V. Lactobacillus
EP1997905A1 (en) 2007-06-01 2008-12-03 Friesland Brands B.V. Nucleic acid amplification
EP1997907A1 (en) 2007-06-01 2008-12-03 Friesland Brands B.V. Bifidobacteria
WO2008153377A1 (en) 2007-06-15 2008-12-18 N.V. Nutricia Nutrition with non-viable bifidobacterium and non-digestible oligosaccharide
EP2522358B1 (en) 2007-06-27 2016-11-09 Laboratorios Ordesa, S.l. Peptides against rotavirus infection
HUP0700552A2 (en) 2007-08-27 2009-03-30 Janos Dr Feher Method and composition inhibiting inflammation
WO2009030254A1 (en) 2007-09-04 2009-03-12 Curevac Gmbh Complexes of rna and cationic peptides for transfection and for immunostimulation
WO2009043856A2 (en) 2007-10-01 2009-04-09 University College Cork, National University Of Ireland, Cork Modulation of tissue fatty acid composition of a host by human gut bacteria
ES2431572T3 (en) 2007-10-20 2013-11-27 Université de Liège Bifidobacterial species
CA2740434C (en) 2007-10-26 2017-11-07 Brenda E. Moore Probiotic compositions and methods for inducing and supporting weight loss
ES2567079T3 (en) 2007-11-02 2016-04-19 Momenta Pharmaceuticals, Inc. Polysaccharide compositions that are not anticoagulants
EP2065048A1 (en) 2007-11-30 2009-06-03 Institut Pasteur Use of a L. casei strain, for the preparation of a composition for inhibiting mast cell activation
BRPI0821165B8 (en) 2007-12-07 2021-05-25 Nutricia Nv use of a composition
WO2009079564A2 (en) 2007-12-17 2009-06-25 Emory University Immunogenic compositions and methods of use thereof
ES2343499B1 (en) 2007-12-24 2011-06-10 Consejo Superior De Investigaciones Cientificas MICROORGANISMS TO IMPROVE THE STATE OF HEALTH OF INDIVIDUALS WITH DISORDERS RELATED TO THE INTAKE OF GLUTEN.
WO2009100331A2 (en) 2008-02-06 2009-08-13 The Procter & Gamble Company Compositions methods and kits for enhancing immune response to a respiratory condition
EP2103226A1 (en) 2008-03-18 2009-09-23 Friesland Brands B.V. Long-life probiotic food product
AU2009236585B2 (en) 2008-04-18 2013-03-07 Vaxinnate Corporation Deletion mutants of flagellin and methods of use
CA2722738C (en) 2008-05-13 2017-04-25 Glycotope Gmbh Fermentation process
MX2008006546A (en) 2008-05-21 2009-11-23 Sigma Alimentos Sa De Cv Bifidobacteria that produces folic acid, food composition and use of said bifidobacteria.
CN101590081A (en) 2008-05-28 2009-12-02 青岛东海药业有限公司 Preparations of Eubacterium protrudoides and Eubacterium dimorpha and their application
CN102940652B (en) 2008-05-28 2015-03-25 青岛东海药业有限公司 Eubacterium biforme preparation and use thereof
WO2009149149A1 (en) 2008-06-04 2009-12-10 Trustees Of Dartmouth College Prevention or treatment of immune-relevant disease by modification of microfloral populations
EP2133088A3 (en) 2008-06-09 2010-01-27 Nestec S.A. Rooibos and inflammation
WO2009151315A1 (en) 2008-06-13 2009-12-17 N.V. Nutricia Nutritional composition for infants delivered via caesarean section
WO2009154463A2 (en) 2008-06-20 2009-12-23 Stichting Top Institute Food And Nutrition Butyrate as a medicament to improve visceral perception in humans
EP2138186A1 (en) 2008-06-24 2009-12-30 Nestec S.A. Probiotics, secretory IgA and inflammation
WO2010002241A1 (en) 2008-06-30 2010-01-07 N.V. Nutricia Nutritional composition for infants delivered via caesarean section
KR101017448B1 (en) 2008-09-18 2011-02-23 주식회사한국야쿠르트 Bifidobacterium long gum H.Y.8004 having the health promoting effect of large intestine and product containing it as an active ingredient
US20100074870A1 (en) 2008-09-19 2010-03-25 Bristol-Myers Squibb Company Probiotic infant products
US8137718B2 (en) 2008-09-19 2012-03-20 Mead Johnson Nutrition Company Probiotic infant products
KR101057357B1 (en) 2008-09-22 2011-08-17 광주과학기술원 Pharmaceutical and Food Compositions for Preventing or Treating Arthritis Comprising Lactic Acid Bacteria and Collagen as Active Ingredients
US9603876B2 (en) 2008-09-25 2017-03-28 New York University Compositions and methods for restoring gastrointestinal microbiota following antibiotic treatment
WO2010037408A1 (en) 2008-09-30 2010-04-08 Curevac Gmbh Composition comprising a complexed (m)rna and a naked mrna for providing or enhancing an immunostimulatory response in a mammal and uses thereof
WO2010037402A1 (en) 2008-10-02 2010-04-08 Dako Denmark A/S Molecular vaccines for infectious disease
BRPI0922296A2 (en) 2008-12-05 2015-08-11 Nestec Sa Compositions for use in low birth weight newborns.
CA2746805A1 (en) 2008-12-19 2010-06-24 Nestec S.A. Prevention and treatment of rotavirus diarrhoea
IT1392672B1 (en) 2009-01-12 2012-03-16 Wyeth Consumer Healthcare S P A COMPOSITIONS INCLUDING PROBIOTIC COMPONENTS AND PREBIOTICS AND MINERAL SALTS, WITH LACTOFERRINA
TW201613969A (en) 2009-03-05 2016-04-16 Abbvie Inc IL-17 binding proteins
JP5710876B2 (en) 2009-03-26 2015-04-30 クロスフィールドバイオ株式会社 Novel Bifidobacterium and its utilization
MX2011011659A (en) 2009-05-07 2012-02-28 Tate & Lyle Ingredients France SAS Compositions and methods for making alpha-(1,2)-branched alpha-(1,6) oligodextrans.
EP2251020A1 (en) 2009-05-11 2010-11-17 Nestec S.A. Short-time high temperature treatment generates microbial preparations with anti-inflammatory profiles
EP2251022A1 (en) 2009-05-11 2010-11-17 Nestec S.A. Non-replicating micro-organisms and their immune boosting effect
JP5860396B2 (en) 2009-05-11 2016-02-16 ネステク ソシエテ アノニム Lactobacillus johnsonii La1NCC533 (CNCMI-1225) and immune disorders
KR20100128168A (en) 2009-05-27 2010-12-07 중앙대학교 산학협력단 New strain with excellent conjugated linoleic acid production capacity
US20100311686A1 (en) 2009-06-03 2010-12-09 Kasper Lloyd H Nutraceutical composition and methods for preventing or treating multiple sclerosis
WO2010143940A1 (en) 2009-06-12 2010-12-16 N.V. Nutricia Synergistic mixture of beta-galacto-oligosaccharides with beta-1,3 and beta-1,4/1,6 linkages
WO2010147714A1 (en) 2009-06-16 2010-12-23 The Trustees Of Columbia University In The City Of New York Autism-associated biomarkers and uses thereof
WO2011005756A1 (en) 2009-07-06 2011-01-13 Puretech Ventures, Llc Delivery of agents targeted to microbiota niches
WO2011011094A1 (en) 2009-07-24 2011-01-27 Dowd Scot E Universal microbial diagnosis, detection, quantification, and specimen-targeted therapy
PT2467032T (en) 2009-08-18 2018-04-04 Nestec Sa A nutritional composition comprising bifidobacterium longum strains and reducing food allergy symptoms, especially in infants and children
US20110053829A1 (en) 2009-09-03 2011-03-03 Curevac Gmbh Disulfide-linked polyethyleneglycol/peptide conjugates for the transfection of nucleic acids
JP2013505289A (en) 2009-09-23 2013-02-14 トーマス・ジュリアス・ボロディ Treatment of intestinal infections
EP2308498A1 (en) 2009-09-30 2011-04-13 Nestec S.A. Administration of Bifidobacterium breve during infancy to prevent inflammation later in life
EP2486143A1 (en) 2009-10-05 2012-08-15 AAK Patent B.V. Methods for diagnosing irritable bowel syndrome
EP3144004A1 (en) 2009-10-06 2017-03-22 Scott Dorfner Antibiotic formulations providing reduced gastrointestinal side effects and clostridium difficile infection relapse, and related methods
RU2546251C2 (en) 2009-11-11 2015-04-10 Алиментари Хелс Лимитед Probiotic strain of bifidus bacteria
CN102651973A (en) 2009-12-18 2012-08-29 希尔氏宠物营养品公司 Pet food compositions containing probiotics and methods of making and using same
AU2011209407B2 (en) * 2010-01-28 2014-02-27 Ab-Biotics S.A. Probiotic composition for use in the treatment of bowel inflammation
US20150104418A1 (en) 2014-12-18 2015-04-16 Microbios, Inc. Bacterial composition
FR2955774A1 (en) 2010-02-02 2011-08-05 Aragan PREPARATION FOR TREATING PONDERAL EXCES AND ASSOCIATED DISORDERS AND APPLICATIONS THEREOF
NL2004201C2 (en) 2010-02-05 2011-08-08 Friesland Brands Bv Use of sialyl oligosaccharides to modulate the immune system.
NL2004200C2 (en) 2010-02-05 2011-08-08 Friesland Brands Bv Use of sialyl oligosaccharides in weight management.
IT1398553B1 (en) 2010-03-08 2013-03-01 Probiotical Spa COMPOSITION INCLUDING PROBIOTIC BACTERIA FOR THE TREATMENT OF PATHOLOGIES ASSOCIATED WITH THE ALTERATION OF THE IMMUNE SYSTEM.
JP5737646B2 (en) 2010-03-24 2015-06-17 森下仁丹株式会社 Antiallergic agent
WO2011121379A1 (en) 2010-03-30 2011-10-06 Assistance Publique - Hopitaux De Paris Use of bifidobacteria for preventing allergy in breastfed infants
US8951512B2 (en) 2010-05-04 2015-02-10 New York University Methods for treating bone disorders by characterizing and restoring mammalian bacterial microbiota
WO2011149335A1 (en) 2010-05-25 2011-12-01 N.V. Nutricia Immune imprinting nutritional composition
WO2011151941A1 (en) 2010-06-04 2011-12-08 国立大学法人東京大学 Composition having activity of inducing proliferation or accumulation of regulatory t cell
TWI417054B (en) 2010-06-15 2013-12-01 Jen Shine Biotechnology Co Ltd Novel enterococcus faecium ljs-01 and its use for probiotic
EP2397145A1 (en) 2010-06-18 2011-12-21 Nestec S.A. L. johnsonii La1, B. longum NCC2705 and immune disorders
FR2962045B1 (en) 2010-07-05 2012-08-17 Bifinove MACROMOLECULAR COMPLEX OF BACTERIAL ORIGIN AND USE OF SAID MOLECULAR COMPLEX FOR PREVENTING AND TREATING INFLAMMATORY RHUMATISMS
TWI401086B (en) 2010-07-20 2013-07-11 Univ China Medical Lactobacillus plantarum and uses thereof
RU2581922C2 (en) 2010-07-26 2016-04-20 Кью Байолоджикс Инк. Immunogenic anti-inflammatory compositions
KR102435108B1 (en) 2010-08-04 2022-08-22 핀치 테라퓨틱스 홀딩스 엘엘씨 Compositions for fecal floral transplantation and methods for making and using them and devices for delivering them
WO2012024638A2 (en) 2010-08-20 2012-02-23 New York University Compositions and methods for treating obesity and related disorders by characterizing and restoring mammalian bacterial microbiota
KR101250463B1 (en) 2010-10-12 2013-04-15 대한민국 Oxygen tolerant Bifidobacterium longum from Korean neonate fecal samples and probiotic compositions produced by the same
KR20130113476A (en) 2010-10-27 2013-10-15 ?티백트 에이/에스 Capture of target dna and rna by probes comprising intercalator molecules
CN102031235B (en) 2010-11-09 2012-07-25 中国农业大学 Enterococcus faecium ANSE228 and application thereof
EP2455092A1 (en) 2010-11-11 2012-05-23 Nestec S.A. Non-replicating probiotic micro-organisms protect against upper respiratory tract infections
WO2012071380A1 (en) 2010-11-24 2012-05-31 Oragenics, Inc. Use of bacteria to treat and prevent respiratory infections
CN102093967B (en) 2010-12-02 2013-01-30 中国农业科学院特产研究所 A strain of Enterococcus faecium derived from mink and its application
ES2389547B1 (en) 2010-12-07 2013-08-08 Consejo Superior De Investigaciones Científicas (Csic) BIFIDOBACTERIUM CECT 7765 AND ITS USE IN THE PREVENTION AND / OR TREATMENT OF OVERWEIGHT, OBESITY AND ASSOCIATED PATHOLOGIES.
KR20140030132A (en) 2011-01-10 2014-03-11 클리브랜드 바이오랩스, 아이엔씨. Use of toll-like receptor agonist for treating cancer
HUE033189T2 (en) 2011-01-31 2017-11-28 Synformulas Gmbh Bifidobacterium bifidum strains for application in gastrointestinal diseases
JP5840368B2 (en) 2011-02-02 2016-01-06 カルピス株式会社 Substances for preventing and improving arthritis
PL2672980T3 (en) 2011-02-09 2018-05-30 Lavivo Ab Synbiotic compositions for restoration and reconstitution of gut microbiota
CN103561752B (en) 2011-03-09 2016-04-20 明尼苏达大学评议会 Compositions and methods for transplanting colonic microbiota
BRPI1100857A2 (en) 2011-03-18 2013-05-21 Eduardo Nowill Alexandre immunomodulatory agent and combinations thereof, their use and immunotherapeutic method for real time recontextualization, reprogramming and rebuilding of the immune system
WO2012140636A1 (en) 2011-04-11 2012-10-18 Alimentary Health Limited A probiotic formulation
WO2012142605A1 (en) 2011-04-15 2012-10-18 Samaritan Health Services Rapid recolonization deployment agent
KR20140053887A (en) 2011-04-20 2014-05-08 미코 바이오, 인크. Composition and method for enhancing an immune response
EP2707379A4 (en) 2011-05-13 2014-10-08 Glycosyn LLC USE OF PURIFIED 2'-FUCOSYLLACTOSE, 3-FUCOSYLLACTOSE AND LACTODIFUCOTÉTOSE AS PREBIOTICS
KR20120133133A (en) 2011-05-30 2012-12-10 한국 한의학 연구원 Composition for Prevention or Treatment of Respiratory Disease Comprising Herbal Extract and Fermentation Product thereof with Lactic acid Bacteria
US20140171339A1 (en) 2011-06-06 2014-06-19 The University Of North Carolina At Chapel Hill Methods and kits for detecting adenomas, colorectal cancer, and uses thereof
GB201110095D0 (en) 2011-06-15 2011-07-27 Danisco Method of treatment
JP2013005759A (en) 2011-06-24 2013-01-10 Kyodo Milk Industry Co Ltd Method for estimating intestinal bacterial flora of mouse
JP6222626B2 (en) 2011-07-07 2017-11-01 長岡香料株式会社 Fructose absorption inhibitor
US20130017999A1 (en) 2011-07-14 2013-01-17 Marc Fremont Methods and Compositions for Evaluating and/or Treating Chronic Immune Diseases
GB201112091D0 (en) 2011-07-14 2011-08-31 Gt Biolog Ltd Bacterial strains isolated from pigs
US20130022575A1 (en) 2011-07-19 2013-01-24 Microbial Rx Systems and methods of replacing intestinal flora
CN102304483A (en) 2011-08-12 2012-01-04 北京金泰得生物科技股份有限公司 Enterococcus faecium for feeding and applications thereof
KR101261872B1 (en) 2011-08-23 2013-05-14 대한민국 (식품의약품안전처장) A intestinal microbial enzyme mixture and it's preparation thereof
US20140363397A1 (en) 2011-09-14 2014-12-11 Queen's University At Kingston Method for treatment of disorders of the gastrointestinal system
GB201117313D0 (en) 2011-10-07 2011-11-16 Gt Biolog Ltd Bacterium for use in medicine
EA201490512A1 (en) 2011-10-11 2014-09-30 Ачим Байотерапьютикс Аб COMPOSITIONS CONTAINING CULTIVATED IN ANAEROBIC CONDITIONS HUMAN INTESTINE MICROBIOT
CN103082292B (en) 2011-11-02 2015-03-04 深圳华大基因研究院 Use of Roseburia for the treatment and prevention of obesity-related diseases
CN102373172B (en) 2011-11-03 2013-03-20 北京龙科方舟生物工程技术有限公司 Enterococcus faecium and application thereof
EP2785828B1 (en) 2011-12-01 2020-04-08 The University of Tokyo Human-derived bacteria that induce proliferation or accumulation of regulatory t cells
ES2408279B1 (en) 2011-12-15 2014-09-09 Universidad De Las Palmas De Gran Canaria PROBIOTIC LACTIC ACID BACTERIA
ITBG20120010A1 (en) 2012-02-24 2013-08-25 Milano Politecnico DEVICE FOR SURGICAL TRAINING
ITMI20120471A1 (en) 2012-03-26 2013-09-27 Giovanni Mogna COMPOSITION BASED ON BACTERIA BIFID BACTERIUM LONGUM STRIPS ABLE TO HELP THE EXTENSION OF LIFE
JP5792105B2 (en) 2012-03-27 2015-10-07 森永乳業株式会社 Method for producing lacto-N-biose I
WO2013146319A1 (en) 2012-03-30 2013-10-03 味の素株式会社 Diabetes-inducible bacterium
WO2013154826A2 (en) 2012-04-11 2013-10-17 Nestec Sa Methods for diagnosing impending diarrhea
GB201206599D0 (en) 2012-04-13 2012-05-30 Univ Manchester Probiotic bacteria
EP2836218A4 (en) 2012-04-13 2015-10-21 Trustees Boston College PREBIOTIC COMPOSITIONS AND METHODS OF USE
EP2850202B1 (en) 2012-05-18 2020-03-11 Genome Research Limited Methods and groups
ES2436251B1 (en) 2012-05-25 2014-10-08 Consejo Superior De Investigaciones Científicas (Csic) BACTEROIDS CECT 7771 AND ITS USE IN THE PREVENTION AND TREATMENT OF OVERWEIGHT, OBESITY AND METABOLIC AND IMMUNOLOGICAL ALTERATIONS.
EP3659598A1 (en) 2012-06-04 2020-06-03 Gaurav Agrawal Compositions and methods for treating crohn's disease and related conditions and infections
CN106620189B (en) 2012-06-06 2021-11-19 上海交通大学 Method for improving intestinal flora structure and application
EP2864355B1 (en) 2012-06-25 2016-10-12 Orega Biotech Il-17 antagonist antibodies
ES2609654T3 (en) 2012-07-31 2017-04-21 Nestec S.A. Nutritive composition to promote the health of the musculoskeletal system of patients suffering from inflammatory bowel disease (IBD)
WO2014019271A1 (en) 2012-08-01 2014-02-06 Bgi Shenzhen Biomarkers for diabetes and usages thereof
EP2890808A4 (en) 2012-08-29 2016-09-28 California Inst Of Techn DIAGNOSIS AND TREATMENT OF AUTISM SPECTRUM DISORDER
KR20150046310A (en) 2012-08-29 2015-04-29 샐릭스 파마슈티컬스 인코포레이티드 Laxative compositions and methods for treating constipation and related gastrointestinal diseases and conditions
CA2884816A1 (en) 2012-09-13 2014-03-20 Massachusetts Institute Of Technology Programmable drug delivery profiles of tumor-targeted bacteria
KR101473058B1 (en) 2012-09-19 2014-12-16 주식회사 쎌바이오텍 Composition for preventing or treating irritable bowel syndrome
CN103652322B (en) 2012-09-21 2016-02-10 临沂思科生物科技有限公司 A kind of preparation method of lactobacteria-containing composite probiotics feed additive
US20150299776A1 (en) 2012-10-03 2015-10-22 Metabogen Ab Identification of a Person having Risk for Atherosclerosis and Associated Disease by the Person's Gut Microbiome and the Prevention of such Diseases
FR2997091B1 (en) 2012-10-22 2016-05-06 Fond Mediterranee Infection USE OF ANTIOXIDANT COMPOUND FOR THE CULTURE OF BACTERIA SENSITIVE TO OXYGEN TENSION
WO2014070225A1 (en) 2012-10-30 2014-05-08 Deerland Enzymes, Inc. Prebiotic compositions comprising one or more types of bacteriophage
EP2914275A1 (en) 2012-10-30 2015-09-09 Nestec S.A. Compositions comprising microparticles and probiotics to deliver a synergistic immune effect
JP2015535280A (en) 2012-11-01 2015-12-10 レイクスユニフェルシテイト フローニンゲン Methods and compositions for stimulating beneficial bacteria in the gastrointestinal tract
WO2014075745A1 (en) 2012-11-19 2014-05-22 Université Catholique de Louvain Use of akkermansia for treating metabolic disorders
US8906668B2 (en) 2012-11-23 2014-12-09 Seres Health, Inc. Synergistic bacterial compositions and methods of production and use thereof
NZ709392A (en) 2012-11-23 2016-10-28 Seres Therapeutics Inc Synergistic bacterial compositions and methods of production and use thereof
JP2016501852A (en) 2012-11-26 2016-01-21 トーマス・ジュリアス・ボロディ Compositions for the recovery of fecal microbiota and methods for making and using them
IL239317B (en) 2012-12-12 2022-07-01 Broad Inst Inc Delivery, engineering and optimization of systems, methods and compositions for sequence manipulation and therapeutic applications
EP2931898B1 (en) 2012-12-12 2016-03-09 The Broad Institute, Inc. Engineering and optimization of systems, methods and compositions for sequence manipulation with functional domains
ES2576126T3 (en) 2012-12-12 2016-07-05 The Broad Institute, Inc. Modification by genetic technology and optimization of improved enzyme systems, methods and compositions for sequence manipulation
US20140193464A1 (en) 2013-01-08 2014-07-10 Imagilin Technology, Llc Effects of probiotics on humans and animals under environmental or biological changes
EP3904502A3 (en) * 2013-02-04 2022-02-23 Seres Therapeutics, Inc. Compositions and methods
CA2940226A1 (en) 2013-02-22 2014-08-28 The Regents Of The University Of California Compositions and methods for promoting growth of beneficial microbes to treat or prevent disease or prolong life
MX2015011700A (en) 2013-03-05 2016-07-20 Univ Groningen Use of faecali bacterium prausnitzii htf-f (dsm 26943) to suppress inflammation.
AU2014239883B2 (en) 2013-03-14 2019-01-17 Therabiome, Llc Targeted gastrointestinal tract delivery of probiotic organisms and/or therapeutic agents
EP2971148A4 (en) 2013-03-14 2016-08-17 Seres Therapeutics Inc Methods for pathogen detection and enrichment from materials and compositions
HK1220326A1 (en) * 2013-03-15 2017-05-05 Seres Therapeutics, Inc. Network-based microbial compositions and methods
US9669059B2 (en) 2013-03-15 2017-06-06 University Of Florida Research Foundation, Incorporated Butyrogenic bacteria as probiotics to treat clostridium difficile
CN103142656A (en) 2013-03-18 2013-06-12 广州知光生物科技有限公司 Application of bacteroides fragilis in preparing composition for preventing and treating colon cancer
CN103146620A (en) 2013-03-25 2013-06-12 广州知光生物科技有限公司 Bacteroides fragilis with characteristics of probiotics
JP2014196260A (en) 2013-03-29 2014-10-16 公立大学法人奈良県立医科大学 Preventive or therapeutic composition of chronic obstructive pulmonary disease
GB201306536D0 (en) 2013-04-10 2013-05-22 Gt Biolog Ltd Polypeptide and immune modulation
EP4234011A3 (en) 2013-06-05 2023-09-20 Rebiotix, Inc. Microbiota restoration therapy (mrt), compositions and methods of manufacture
US9511099B2 (en) 2013-06-05 2016-12-06 Rebiotix, Inc. Microbiota restoration therapy (MRT), compositions and methods of manufacture
WO2014201037A2 (en) 2013-06-10 2014-12-18 New York University Methods for manipulating immune responses by altering microbiota
WO2014200334A1 (en) 2013-06-14 2014-12-18 N.V. Nutricia Synbiotic composition for treatment of infections in allergic patients
WO2015003001A1 (en) 2013-07-01 2015-01-08 The Washington University Methods for identifying supplements that increase gut colonization by an isolated bacterial species, and compositions derived therefrom
WO2015003305A1 (en) 2013-07-08 2015-01-15 吉瑞高新科技股份有限公司 Electronic cigarette case
JP2016530239A (en) 2013-07-09 2016-09-29 ピュアテック ベンチャーズ、エルエルシー Disease treatment composition comprising a combination of microbiota-derived bioactive molecules
WO2015013214A2 (en) 2013-07-21 2015-01-29 Whole Biome, Inc. Methods and systems for microbiome characterization, monitoring and treatment
US20160192689A1 (en) 2013-07-31 2016-07-07 Wikifoods, Inc. Encapsulated functional food compositions
EP3033091B1 (en) 2013-08-16 2022-09-07 Versitech Limited Probiotic composition and use thereof in the prevention and treatment of hepatocellular carcinoma
CN103509741B (en) 2013-08-22 2015-02-18 河北农业大学 Braun bacterium AUH-JLD56 and application thereof in arctigenin conversion
ITMI20131467A1 (en) 2013-09-06 2015-03-07 Sofar Spa USE OF A COMPOSITION INCLUDING MICRO-ORGANISMS TO INCREASE THE INTESTINAL PRODUCTION OF BUTIRRIC ACID, FOLIC ACID OR NIACINE ACID AND / OR TO REDUCE THE INTESTINAL PRODUCTION OF SUCCINIC ACID
WO2015038731A1 (en) 2013-09-12 2015-03-19 The Johns Hopkins University Biofilm formation to define risk for colon cancer
US10058576B2 (en) 2013-10-03 2018-08-28 The Trustees Of The University Of Pennsylvania Compositions and methods comprising a defined microbiome and methods of use thereof
EP3071052B1 (en) 2013-10-18 2020-02-26 InnovaChildfood AB A nutritionally balanced composite meal for infants and small children and a method of producing said meal
PL229020B1 (en) 2013-11-13 2018-05-30 Inst Biotechnologii Surowic I Szczepionek Biomed Spolka Akcyjna New strain of Bifidobacterium breve
MX367109B (en) 2013-11-25 2019-08-05 Seres Therapeutics Inc Synergistic bacterial compositions and methods of production and use thereof.
WO2015095241A2 (en) 2013-12-16 2015-06-25 Seres Health, Inc. Bacterial compositions and methods of use thereof for treatment of immune system disorders
CN103981115B (en) 2013-12-24 2018-10-26 北京大伟嘉生物技术股份有限公司 One plant height resistance enterococcus faecium and its application
CN103981117B (en) 2013-12-24 2018-10-26 北京大伟嘉生物技术股份有限公司 One plant height resistance enterococcus faecium and its cultural method and application
CN103820363B (en) 2014-01-27 2016-02-24 福建省农业科学院生物技术研究所 A kind of preparation and application of faecium bacterium powder
CN103865846B (en) 2014-02-27 2016-03-30 扬州绿保生物科技有限公司 A kind of faecium and preparation method thereof
CN103849590B (en) 2014-03-25 2016-07-06 上海交通大学 The one acidproof bifidobacterium breve BB8dpH of strain and application thereof
KR101683474B1 (en) 2014-03-26 2016-12-08 주식회사 쎌바이오텍 Composition for preventing or treating irritable bowel syndrome
US9783858B2 (en) 2014-04-02 2017-10-10 Northwestern University Altered microbiome of chronic pelvic pain
KR101583546B1 (en) 2014-04-09 2016-01-11 국립암센터 Method for prediction of reactivity to sorafenib treatment Using gene polymorphism
CN106659746A (en) 2014-04-10 2017-05-10 国立研究开发法人理化学研究所 Compositions and methods for induction of TH17 cells
CN104195075B (en) 2014-08-14 2017-04-19 生合生物科技股份有限公司 A kind of Enterococcus faecium EF08 and its feed additive and feed
WO2015168534A1 (en) 2014-05-02 2015-11-05 Novogy, Inc. Therapeutic treatment of gastrointestinal microbial imbalances through competitive microbe displacement
JP6629840B2 (en) 2014-05-08 2020-01-15 パノプテス・ファーマ・ゲーエムベーハー Compounds for treating ophthalmic diseases and disorders
CN106687130B (en) 2014-08-05 2020-01-21 深圳华大基因科技有限公司 Use of Eubacterium spp in the prevention and treatment of colorectal cancer-related diseases
WO2016033439A2 (en) 2014-08-28 2016-03-03 Yale University Compositions and methods for the treating an inflammatory disease or disorder
WO2016036615A1 (en) 2014-09-03 2016-03-10 California Institute Of Technology Microbe-based modulation of serotonin biosynthesis
CN104546933A (en) * 2014-09-30 2015-04-29 深圳华大基因科技有限公司 Application of bacteroides caccae in treatment or prevention of rheumatoid arthritis or related diseases thereof
CN104546934B (en) 2014-09-30 2019-04-09 深圳华大基因科技有限公司 Application of Parabacteroides faecalis in the treatment or prevention of rheumatoid arthritis or its related diseases
CN104546940A (en) 2014-09-30 2015-04-29 深圳华大基因科技有限公司 Application of common bacteroides in treatment or prevention of rheumatoid arthritis or related diseases thereof
CN104546932A (en) 2014-09-30 2015-04-29 深圳华大基因科技有限公司 Application of bacteroides ovatus in treating or preventing rheumatoid arthritis or related diseases thereof
US10046030B2 (en) 2014-10-07 2018-08-14 University Of Virginia Patent Foundation Compositions and methods for preventing and treating infection
US10716816B2 (en) 2014-10-24 2020-07-21 Evolve Biosystems Inc. Activated bifidobacteria and methods of use thereof
CN107106616A (en) 2014-10-30 2017-08-29 加利福尼亚技术学院 The composition and method of bacterium including improvement neurodevelopmental disorder behavior
CA2966363A1 (en) 2014-10-30 2016-05-06 California Institute Of Technology Compositions and methods comprising bacteria for improving behavior in neurodevelopmental disorders
CA2964480A1 (en) 2014-10-31 2016-05-06 Whole Biome Inc. Methods and compositions relating to microbial treatment and diagnosis of disorders
CN104435000A (en) 2014-11-12 2015-03-25 江南大学 Application of lactic acid bacteria for treating bronchial asthma
AU2015353465B2 (en) 2014-11-25 2021-07-29 Memorial Sloan-Kettering Cancer Center Intestinal microbiota and GVHD
MA41020A (en) 2014-11-25 2017-10-03 Evelo Biosciences Inc PROBIOTIC AND PREBIOTIC COMPOSITIONS, AND THEIR METHODS OF USE FOR MODULATION OF THE MICROBIOME
PL3065748T3 (en) 2014-12-23 2018-07-31 4D Pharma Research Limited A bacteroides thetaiotaomicron strain and its use in reducing inflammation
KR20170091157A (en) 2014-12-23 2017-08-08 4디 파마 리서치 리미티드 Pirin polypeptide and immune modulation
CN104560820B (en) 2014-12-30 2017-10-20 杭州师范大学 VREF KQ2.6 and application
KR102735818B1 (en) 2015-01-23 2024-11-28 템플 유니버시티-오브 더 커먼웰쓰 시스템 오브 하이어 에듀케이션 Uses of short-chain fatty acids in cancer prevention
CN105982919A (en) 2015-02-26 2016-10-05 王汉成 Biological retarder anti-cancer technology
WO2016139217A1 (en) 2015-03-04 2016-09-09 Ab-Biotics, S.A. Composition comprising anaerobically cultivated human intestinal microbiota
GB2553701A (en) 2015-03-18 2018-03-14 Whole Biome Inc Methods and compositions relating to microbial treatment and diagnosis of skin disorders
US20180078587A1 (en) 2015-03-18 2018-03-22 Trustees Of Tufts College Compositions and methods for preventing colorectal cancer
WO2016196605A1 (en) 2015-06-01 2016-12-08 The University Of Chicago Treatment of cancer by manipulation of commensal microflora
SI3240554T1 (en) 2015-06-15 2019-12-31 4D Pharma Research Limited, Blautia stercosis and wexlerae for use in the treatment of inflammatory and autoimmune diseases
EA201890050A1 (en) 2015-06-15 2018-06-29 4Д Фарма Рисёрч Лимитед COMPOSITIONS CONTAINING BACTERIAL STRAINS
MD3650033T2 (en) 2015-06-15 2022-08-31 4D Pharma Res Ltd Compositions comprising bacterial strains
MA41010B1 (en) 2015-06-15 2020-01-31 4D Pharma Res Ltd Compositions comprising bacterial strains
MA41060B1 (en) 2015-06-15 2019-11-29 4D Pharma Res Ltd Compositions comprising bacterial strains
CN105112333A (en) 2015-08-31 2015-12-02 江南大学 Bifidobacterium longum with good intestinal tract colonizing ability and screening method and application of bifidobacterium longum
GB201520497D0 (en) 2015-11-20 2016-01-06 4D Pharma Res Ltd Compositions comprising bacterial strains
AU2016357554B2 (en) 2015-11-20 2019-04-04 Cj Bioscience, Inc. Compositions comprising bacterial strains
GB201520631D0 (en) 2015-11-23 2016-01-06 4D Pharma Res Ltd Compositions comprising bacterial strains
GB201520638D0 (en) 2015-11-23 2016-01-06 4D Pharma Res Ltd Compositions comprising bacterial strains
EP3379935A4 (en) 2015-11-25 2019-08-28 Memorial Sloan-Kettering Cancer Center METHODS AND COMPOSITIONS FOR REDUCING ENTEROCOCCI INFECTION OR COLONIZATION
EP3520801A1 (en) 2016-03-04 2019-08-07 4D Pharma Plc Compositions comprising bacterial blautia strains for treating visceral hypersensitivity
TW201821093A (en) 2016-07-13 2018-06-16 英商4D製藥有限公司 Composition comprising a bacterial strain
GB201621123D0 (en) 2016-12-12 2017-01-25 4D Pharma Plc Compositions comprising bacterial strains
WO2018112363A1 (en) 2016-12-16 2018-06-21 Evelo Biosciences, Inc. Methods of treating cancer using parabacteroides
WO2018112365A2 (en) 2016-12-16 2018-06-21 Evelo Biosciences, Inc. Methods of treating colorectal cancer and melanoma using parabacteroides goldsteinii
TW201907931A (en) 2017-05-24 2019-03-01 英商4D製藥研究有限公司 Composition comprising a bacterial strain
TW201906620A (en) 2017-07-05 2019-02-16 美商艾弗洛生物科技股份有限公司 Composition and method for treating cancer using BIFIDOBACTERIUM ANIMALIS SSP. LACTIS

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2011153226A2 (en) * 2010-06-01 2011-12-08 Moore Research Enterprises Llc Cellular constituents from bacteroides, compositions thereof, and therapeutic methods employing bacteroides or cellular constituents thereof
US9011834B1 (en) * 2013-02-04 2015-04-21 Seres Health, Inc. Compositions and methods
CN103156888A (en) * 2013-03-18 2013-06-19 广州知光生物科技有限公司 Application of bacteroides fragilis in preparation of composition for treating inflammatory bowel diseases
US20140335131A1 (en) * 2013-05-10 2014-11-13 California Institute Of Technology Probiotic prevention and treatment of colon cancer
CN104546942A (en) * 2014-09-30 2015-04-29 深圳华大基因科技有限公司 Application of bacteroides dorei in treating or preventing rheumatoid arthritis or related diseases thereof
CN104546935A (en) * 2014-09-30 2015-04-29 深圳华大基因科技有限公司 Application of bacteroides thetaiotaomicron in treating or preventing rheumatoid arthritis or related diseases thereof

Cited By (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11701396B2 (en) 2016-06-14 2023-07-18 Vedanta Biosciences, Inc. Treatment of Clostridium difficile infection
US10064904B2 (en) 2016-06-14 2018-09-04 Vedanta Biosciences, Inc. Treatment of Clostridium difficile infection
US10350250B2 (en) 2016-06-14 2019-07-16 Vedanta Biosciences, Inc. Treatment of clostridium difficile infection
US10456431B2 (en) 2016-06-14 2019-10-29 Vedanta Biosciences, Inc. Treatment of clostridium difficile infection
US10555980B2 (en) 2016-06-14 2020-02-11 Vedanta Biosciences, Inc. Treatment of Clostridium difficile infection
US12390498B2 (en) 2016-06-14 2025-08-19 Vedanta Biosciences, Inc. Treatment of clostridium difficile infection
US9999641B2 (en) 2016-06-14 2018-06-19 Vedanta Biosciences, Inc. Treatment of clostridium difficile infection
US11810650B2 (en) 2017-04-03 2023-11-07 Gusto Global, Llc Rational design of microbial-based biotherapeutics
JP2021501167A (en) * 2017-10-31 2021-01-14 アンスティテュ ギュスタブ ルシ Bacterial and cellular compositions for the treatment of colorectal cancer and methods for assessing the prognosis of patients with them
KR20200081425A (en) * 2017-10-31 2020-07-07 인스티튜트 구스타브 루시 Bacterial and cellular compositions for the treatment of colorectal cancer, and methods for assessing the prognosis of patients with the same
JP7441167B2 (en) 2017-10-31 2024-02-29 アンスティテュ ギュスタブ ルシ Bacterial and cellular compositions for the treatment of colorectal cancer and methods for assessing the prognosis of patients with it
KR102711178B1 (en) * 2017-10-31 2024-09-26 인스티튜트 구스타브 루시 Bacterial and cell compositions for the treatment of colorectal cancer, and methods for assessing the prognosis of patients having the same
US12161680B2 (en) 2018-08-17 2024-12-10 Vedanta Biosciences, Inc. Methods of decreasing dysbiosis and restoring a microbiome
WO2020074569A1 (en) * 2018-10-09 2020-04-16 4D Pharma Research Limited Compositions comprising bacterial strains
EP3839039A1 (en) 2019-12-16 2021-06-23 4D Pharma Research Limited Providing bacterial biomass with improved storage stability
WO2021122771A1 (en) 2019-12-16 2021-06-24 4D Pharma Research Limited Providing bacterial biomass with improved storage stability
WO2021123379A1 (en) 2019-12-20 2021-06-24 4D Pharma León, S.L.U. Lyophilisation process

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